
==== Front
Food Waterborne Parasitol
Food Waterborne Parasitol
Food and Waterborne Parasitology
2405-6766
Elsevier

S2405-6766(24)00021-0
10.1016/j.fawpar.2024.e00239
e00239
Review Article
Over a century of progress on Trichinella research in pigs at the United States Department of Agriculture: Challenges and solutions☆
Dubey Jitender P.
Thompson Peter C.
Fournet Valsin
Hill Dolores E. 1
Zarlenga Dante 1
Gamble H. Ray 1
Rosenthal Benjamin M. benjamin.rosenthal@usda.gov
⁎
United States Department of Agriculture, Agricultural Research Service, Beltsville Agricultural Research Center, Animal Parasitic Diseases Laboratory, Beltsville, MD 20705-2350, USA
⁎ Corresponding author. benjamin.rosenthal@usda.gov
1 Retired.

26 7 2024
9 2024
26 7 2024
36 e0023920 5 2024
11 7 2024
22 7 2024
https://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
Trichinellosis, caused by 13 species/subspecies/genotypes in the nematode genus Trichinella, is a worldwide zoonosis. In the United States, trichinellosis was of historical and economic significance because of European restrictions on the import of U.S. pork. Before the advent of effective protective measures, most cases of trichinellosis were derived from consumption of undercooked or inadequately processed, infected pork. Research conducted at the United States Department of Agriculture (USDA) since 1891, and policies established by USDA regulatory agencies, have helped to reduce Trichinella infections in commercially raised domestic pigs to negligible levels. Here, we review the history of this scientific progress, placing special emphasis on research conducted at the USDA's Beltsville Agricultural Research Center.

Highlights

• Eating undercooked pork once posed appreciable risk of contracting trichinellosis.

• Over a century of USDA efforts contributed to effective Trichinella control.

• Confined swine housing minimizes Trichinella risk.

• Trichinella infections continue to circulate in wildlife.

Keywords

Trichinella spiralis
Zoonosis
Pig (Sus Scrofa)
Food safety
Prevention
History
Public health
==== Body
pmc1 Introduction

Trichinellosis is a parasitic disease of humans, that occurs worldwide. Trichinellosis has been known for more than two centuries (Table 1). Moreover, paleopathological findings provide evidence that trichinellosis existed at least 3500 years ago (Gaeta and Bruschi, 2021). Although species endemic to North American wildlife hosts likely have a long history here, Trichinella spiralis was introduced to the new world only since European colonial expansion (Rosenthal et al., 2008). Until 1970, T. spiralis was the only species recognized in the genus Trichinella. Currently, 13 species/subspecies/genotypes have been identified and USDA scientists played a major role in this effort as summarized in Table 2.Table 1 Historical landmarks concerning Trichinella and trichinellosis with particular reference to studies at USDA laboratories (in bold).

Table 1Year	Contribution	Reference	
1835	Trichina spiralis discovered and described based on cysts found by a British first- year medical student, James Page, while dissecting a human cadaver that had died of tuberculosis.	Owen (1835); history detailed by Campbell (1979)	
1842	T. spiralis detected in a human cadaver in the USA.	Bowditch (1842)	
1846	Trichina found in pork that the 23-year-old human physician, Joseph Leidy was having for dinner; cooked pork contained dead larvae.	Leidy (1846); details provided by Ward (1923)	
1850	Experimental transmission of Trichina in animals. Trichina were found in muscles of a pet badger that had been fed scraps of muscles from dogs and cats naturally infected with trichina. Three pups fed muscles of badger died of trichinosis.	Herbst (1853): full account in Reinhard (1958)	
1857	Trichina from human flesh found infective to mice, dogs, and pigs. Morphology of adult T. spiralis described.	Leuckart (1860); details in Campbell (1983)	
1859	Trichina from human flesh was infective to a dog and pig. Development of T. spiralis first described, and trichinoscopic testing of pigs at slaughter proposed to monitor infections in pigs.	Virchow (1859); details in Campbell (1983)	
1860	A previously healthy 20-year-old female servant who ate and served pork at the Christmas dinner to a farmer family in Germany died of acute trichinosis; an autopsy performed by Zenker identified thousands of trichina in her muscles. Zenker found adult T. spiralis in intestines of this woman that had been in cold storage for 1 month. The farmer and his wife also had died. Two months later, Zenker visited the butcher who prepared ham and sausages sold to the farmer. The butcher also developed severe muscle pains but survived. Zenker found trichinae in ham and in pork sausages that had been stored at the butcher shop for about 2 months. First demonstration of human as an intermediate and definitive host for T. spiralis.	Zenker (1860); full account in Reinhard (1958)	
1863–1879	Mandatory inspection of pork introduced in Germany. In trichinoscope method around 28 or more samples in 2 rows of wheat grain sized diaphragmatic muscle are arranged on a glass slide and compressed under another slide, clamped with screws, and examined in a projection microscope; illustrated by Gould (1970) and Zimmermann (1983). The procedure cannot detect light infections (1 larva/g).	Zimmermann (1983); Gould (1970); Brantz (2008)	
1879–1888	Several European countries banned importation of pork from USA.	Gignilliat (1961)	
1891	Trichinoscopic testing of pork for export introduced in USA. In 8 years of testing (1898–1906) of > 8 million pigs for export to Germany tested, trichina was found in 1.41%.	Hall (1937)	
1895	Trichinosis outbreaks observed in Germany, some involving 100 cases at a time.	Kozar (1970)	
1895	Amended name Trichina to Trichinella because the genus Trichina was preoccupied with flies. Henceforth, the parasite was recognized as Trichinella spiralis (Owen, 1835) Railliet, 1895.	Railliet, 1895, Railliet, 1896	
1897	Artificial digestion of pork in pepsin and hydrochloric acid proposed to liberate encysted larvae from muscle. Trichinella first found in horse meat.	Thornbury (1897)	
1898	The USDA's Bureau of Animal Industries posts C.W. Stiles, an eminent American parasitologist, to the Embassy in Berlin to test German claims that American pork was the source of outbreaks of trichinellosis in Germany.	Stiles (1901); Cassedy (1971)	
1911	First serological diagnosis test (complement fixation test) described.	Ströbel (1911)	
1914, 1990,2009	Demonstration that freezing kills Trichinella in pork, including different Trichinella species (genotypes) circulating in USA. Freezing standards proposed for meat industry (Kotula et al., 1990)	Ransom (1914); Ransom (1915); Ransom (1916); Kotula et al. (1990)	
1919,1939, 1983	Heating to 58oC kills trichina in pork. Only dead larvae were found in sausages heated to 58 °C (137 °F). Time and temperatures parameters established for FSIS byKotula et al. (1983).	Ransom and Schwartz (1919); Schwartz (1939); Schwartz (1929); Kotula et al. (1983)	
1920, 1985	Demonstration that irradiation kills Trichinella in pork.Brake et al. (1985)tested consumer acceptable levels of gamma irradiation.	Schwartz (1921); Brake et al. (1985)	
1920, 2017	Curing of pork can kill Trichinella. Combining NaCl concentrations above 1.3% with fermentation to pH 5.2 or below inactivates > 96% of Trichinella muscle larvae in stuffed sausages within 24–28 h.	Ransom et al. (1920); Schwartz, 1939, Schwartz, 1940; Hill et al. (2017)	
1930	Muscle larva antigen enables T. spiralis diagnosis in pigs.	Schwartz et al. (1930)	
1935, 1936	Elevated (> 4 times) prevalence in in garbage-fed (vs. grain-fed) pigs.	Hall (1937); Schwartz (1940)	
1949–1970	Trichinella prevalence in Arctic and Alaska, USA documented.	Rausch (1970)	
1952	Feeding uncooked garbage to pigs outlawed to control the viral disease vesicular exanthema, reducing prevalence of Trichinella in pigs.	Jefferies et al. (1966)	
1958–1972	International Commission on trichinellosis established.	Dupouy-Camet et al. (2020); Supplementary file 2	
1961	Benzimidazole treatment introduced as a drug against trichinellosis.	Campbell and Denham (1983)	
1967	Pooled muscle digestion procedure proposed for detection of Trichinella for surveillance.	Zimmermann (1967); Gamble, 1996, Gamble, 1998, Gamble, 1999	
1961–1966	National survey of Trichinella in pigs by peptic digestion of diaphragms of 43,868 revealed low prevalence in farm-raised pigs. Trichinella infections in pigs and humans in the USA reviewed.	Zimmermann and Brandly (1965); Zimmermann (1970); Zimmermann and Zinter (1971)	
1969	First commercial slaughterhouse testing of Trichinella in pork at a plant in Iowa. Based on 5–8 g samples of diaphragm from each pig tested 42 (0.008%) of 482,392 pigs during a 32-weeks period were positive for Trichinella larvae. The cost of testing was estimated to be 0.1$ per pig.	Andrews et al. (1969)	
1972	Multiple species within the genus Trichinella proposed. Trichinella nelsoni and T. nativa recognized (species characteristics and biology of each species currently recognized are summarized in Table 2.	Britov and Boev (1972); see Table 2 for other authors contributions	
1974	First ELISA test developed for serological diagnosis in pigs.	Ruitenberg et al. (1974); van Knapen et al. (1976)	
1980	Outbreaks of clinical trichinellosis derived from consumption of horse meat recognized in Europe. Experimental demonstration that Trichinella from human is infective to horses.	Mantovani et al. (1980); Ancelle (1998); Soule et al. (1989)	
1983, 1988	A sensitive and specific enzyme-linked immunoassay using excretory-secretory products from T. spiralis larvae developed for the detection of Trichinella antibodies.	Gamble et al., 1983, Gamble et al., 1988,Gamble (1996)	
1986	Cannibalism, not rodents, demonstrated as a major source of infection in an endemic herd of 1000 pigs.	Hanbury et al. (1986)	
1987–2006	Morphology, isoenzymes, geography, and genetics discriminate species of Trichinella.	(see Table 2)	
1988	Establishment of the International Trichinella Reference Centre.	Dupouy-Camet et al. (2020); Marucci et al. (2022); Supplementary file 2	
1996,2007	Viable T. spiralis can persist in muscles of experimentally infected horses for >12 months in the absence of detectable level of antibodies. 5 g samples of horsemeat found necessary to detect viable Trichinella infections.	Gamble et al. (1996); Hill et al., 2007a, Hill et al., 2007b	
1999	Freeze resistance of Trichinella nativa established.	Kapel et al. (1999); additional details in Pozio, 2016, Pozio, 2020, Pozio, 2022	
1999-
2001	Development of Multiplex PCR to diagnose all genotypes of Trichinella that became the international standard for genotyping.	Zarlenga et al., 1999, Zarlenga et al., 2001	
2005	A USDA, pork industry initiative of Trichinella certification program for pork issued in USA. All 11,713 pigs tested from certified farms tested negative for Trichinella.	Pyburn et al. (2005)	
2006	Evolutionary and biogeographic hypothesis for Trichinellae.	Zarlenga et al. (2006)	
2007	Joint publication of FAO/OIE/WHO Guidelines for the for the surveillance, management, prevention, and control of trichinellosis.	Dupouy-Camet and Murrell (2007)	
2008	Documentation of especially inbred T. spiralis in Europe and the Americas, impairing outbreak tracing.	Rosenthal et al. (2008)	
2011	First draft sequence of any Trichinella genome, revealing marked differences from the C. elegans “model nematode.”	Mitreva et al. (2011)	
2015	Natural introgression among T. spiralis and T. britovi.	Franssen et al. (2015)	
2016	Draft genomes of all known species of Trichinella.	Korhonen et al. (2016)	
2017	First chromosomal assembly of a Trichinella genome.	Thompson et al. (2017)	
2018	Microsatellite markers readily trace transmission of T. britovibut less readily trace transmission of T. spiralis in Europe.	La Rosa et al., 2012, La Rosa et al., 2018; Bilska-Zając et al., 2022	
2022	Demonstration that genome variation can trace T. spiralis outbreaks.	Rosenthal et al. (2021); Bilska-Zając et al. (2022)	
2024	Testing over 3 million PQA+ pigs via artificial digestion revealed none infected with Trichinella, establishing this production compartment as one of “negligible risk.”	Gamble et al. (2024); see text	

Table 2 Biology of Trichinella species/subtypes/genotypes.

Table 2Genotype	Lineage designation/name	General location	Muscle phase encapsulated	Main hosts	Additional references	
T1	Trichinella spiralis (Owen, 1835) Railliet, 1895	Cosmopolitan	Yes	Suids, rodents, humans	Dame et al. (1987);Zarlenga and Gamble (1990);La Rosa et al. (1992); Pozio et al. (1992b); Lichtenfels et al. (1983); Zarlenga et al. (2002); Murrell et al., (2000); Pozio and Murrell (2006);Zarlenga and La Rosa (2000);Zarlenga et al. (2020);Pozio and Zarlenga (2021)	
T2	Trichinella nativaBritov and Boev, 1972	Circumpolar Arctic	Yes	Suids, carnivores	Lichtenfels et al., 1983); Pozio et al. (1992a);La Rosa et al. (1992); Murrell et al. (2000); Pozio and Murrell (2006)Pozio and Zarlenga (2021)	
T3	Trichinella britovi Pozio, La Rosa, Murrell, Lichtenfels, 1992b	Temperate Europe and Northern Africa	Yes	Suids, carnivores	Pozio et al. (1992a); La Rosa et al. (1992);Murrell et al. (2000); Pozio and Murrell (2006); Pozio and Zarlenga (2021)	
T4	Trichinella pseudospiralis,Garkavi, 1972	Cosmopolitan	No	Mammals, birds	Lichtenfels et al. (1983); Pozio et al. (1992a); La Rosa et al. (1992); Zarlenga et al. (1996);Murrell et al. (2000); Pozio and Murrell, 2006) Pozio and Zarlenga (2021)	
T5	Trichinella murrelliPozio and La Rosa, 2000	Temperate North America	Yes	Carnivores	Zarlenga et al. (1991);Pozio and Zarlenga (2021)	
T6	Trichinella genotype T6
(Pozio, La Rosa, Murrell, Lichtenfels, 1992a)	Northern temperate North America	Yes	Carnivores	Pozio et al. (1992b);Murrell et al. (2000);La Rosa et al. (1992);Pozio and Murrell (2006);Pozio et al. (2009);Pozio and Zarlenga (2021)	
T7	Trichinella nelsoni,Britov and Boev, 1972	Southeastern Africa	Yes	Carnivores	La Rosa et al. (1992);Pozio et al. (1992b);Murrell et al. (2000);Pozio and Murrell (2006);Pozio and Zarlenga (2021)	
T8	Trichinella genotype T8
(Pozio, La Rosa, Murrell, Lichtenfels, 1992b)	Southern Africa	Yes	Carnivores	La Rosa et al. (1992); Pozio et al. (1992);Murrell et al. (2000);Pozio et al. (2009);Pozio and Murrell, (2006)	
T9	Trichinella genotype T9
(Pozio, La Rosa, Murrell, Lichtenfels, 1992b)	Japan	Yes	Carnivores	Nagano et al. (1999)*; Murrell et al. (2000);Pozio and Murrell (2006);Pozio et al. (2009);Pozio and Zarlenga (2021)	
T10	Trichinella papuae,Pozio, Owen, La Rosa, Sacchi, Rossi, Corona, 1999	Southeast Asia	No	Suids, crocodiles	Murrell et al. (2000);Pozio and Murrell (2006)	
T11	Trichinella zimbabwensisPozio, Foggin, Marucci, LaRosa, Sacchi, Corona, Rossi, Mukaratirwa, 2002	Southern Africa	No	Crocodiles, reptiles	Murrell et al. (2000);Pozio and Zarlenga, 2005, Pozio and Zarlenga, 2021	
T12	Trichinella patagoniensisKrivokapich, Pozio, Gatti, Prous, Ribicich, Marucci, La Rosa, and Confalonieri, 2012
.	Southern Temperate South America	Yes	Carnivores	Murrell et al. (2000);Pozio and Zarlenga (2021)	
T13	Trichinella chanchalensis,Sharma, Thompson, Hoberg, Scandrett, Konecsni, Harms, Kukka, Jung, Elkin, Mulders, Larter, Branigan, Pongracz, Wagner, Kafle, Lobanov, Rosenthal, and Jenkins, 2020	Northwest North America	Yes	Carnivores		
In bold (USDA-affiliated).

* excepting Nagano et al 1999, all entries in this column were authored or co-authored with USDA scientists.

Once a common and serious human infection, trichinellosis was historically linked to the consumption of raw or undercooked pork. Through many years of research and changes in the pork industry, most cases of trichinellosis in the United States now result from consuming game meats including wild boar, bear among others (Murrell and Pozio, 2011).

For more than a century, the United States Department of Agriculture (USDA) has conducted research on Trichinella infection in pigs and other animal species, developing control and preventive measures that have reduced prevalence in pigs to negligible levels (Gamble et al., 2024) (Table 1). Here, we summarize the USDA's contributions to Trichinella research in animals, particularly in the last 50 years. Recognizing essential partnerships with valued international research teams, our present focus is to summarize the achievements of USDA agencies (including the Animal Plant and Health Inspection Service [APHIS], Food Safety and Inspection Service [FSIS], and the Agricultural Research Service [ARS]) in collaboration with the National Pork Board. The National Agricultural Library provided literature not otherwise easily accessible.

Landmarks concerning Trichinella biology are summarized in Table 1 with special emphasis on contributions by the USDA scientists. Dupouy-Camet (2024) recently narrated events and lives of European scientists seminal to the discovery of trichinellosis.

2 Brief early history of trichinellosis research at USDA

Research on Trichinella at USDA began as early as 1890.The Bureau of Animal Industry (BAI) was created within the USDA by the United States Congress in 1884. The mission of the BAI was to promote livestock disease research, enforce animal import regulations, and regulate the interstate movement of animals. In the 1880's, the U.S. became the world's leading exporter of pork. During this time, some European countries banned import of U.S. pork owing to the lack of mandated testing for Trichinella in pork (Table 1). Stiles was appointed in 1891 as a zoologist in the Zoological Division of BAI in Washington, DC and in 1898–1899 he was posted to the U.S. Embassy in Berlin to report on German claims that American pork was the source of outbreaks of trichinellosis (Stiles, 1901; Campbell, 1983). This American-born scientist was chosen for this mission because he was fluent in French and German, having studied at the Institute of Pasture in Paris and having obtained a Ph.D. from the University of Leipzig, Germany. Stiles (1901) in a 110- page report listed all cases of trichinellosis in Germany from 1881 to 1898 including reports from Prussia, Saxony, Empire, and other states; none of these were due to pork imported from the U.S. He found that outbreaks occurred despite samples being found negative by trichinoscope examination because this method failed to detect light infections (Stiles, 1901; Dupouy-Camet, 2024). Greater confidence in the veracity of negative tests would require broad application of the more sensitive artificial digestion test.

Thereafter, Schwartz, Ransom, and Hall continued research on trichinellosis for the BAI in Washington, DC (Table 1). In addition to parasitologists at the DC laboratory, scientists were employed by BAI and posted at various swine slaughterhouses, especially those supporting pork exports to Germany.

Thornbury, a MD, was among such supervising microscopists at an abattoir in Buffalo, New York. His observations on Trichinella in pigs and humans are noteworthy (Thornbury, 1897). He examined muscles from 197,948 pigs in 11 months and found Trichinella in 1043 (0.05%) of the carcasses. In a comparative study, prevalence of Trichinella was higher in pork loin muscles than in muscles of the neck or the diaphragm; but the intensity of infection was greatest in the diaphragm. As many as 1023 larvae were found in a single histological slide (Thornbury, 1897). As many as 50,000 larvae were estimated in one ounce (∼ 28 g) of pork. Thornbury was first to describe the sensitive pepsin digestion method to liberate Trichinella from muscle tissues (Table 1). Also noteworthy is his documentation of severe trichinellosis in residents, of German descent, in Milwaukee, Wisconsin. Seven of the nine people who feasted on one sausage “roost Wurst” (probably undercooked/uncooked) died of acute trichinellosis. Large numbers of Trichinella larvae were found in muscles of two humans examined microscopically, and in the sausages they consumed. The Secretory of Agriculture, the Honorable Jerry Rusk was briefed on the episode (Thornbury, 1897).

In 1953, the functions of the BAI were transferred to the newly established Agricultural Research Service (ARS). Staff of the Zoological Division were transferred from Washington, DC to the Beltsville Parasitology Laboratory (BPL). In 1960–1961, BPL moved to its current location and the name was changed to the Animal Parasitology Institute (API) in 1972 (Andrews, 1987).

3 Trichinella research at the animal parasitology institute (now animal parasitic diseases laboratory, APDL), ARS, Beltsville, USDA

After the retirement of Swartz in 1959, work on Trichinella was put on hold until the appointment of Dr. K. D. Murrell in 1978 as a scientist in the Animal Parasitology Institute, Beltsville Agricultural Research Center (BARC). (Supplementary file 1).

While modernization of pork production systems, including a ban on feeding raw garbage in the mid 20th century, had a major impact in reducing exposure of pigs to Trichinella, documenting the safety of pork to domestic consumers and for purposes of trade remained a high priority. Gaps in knowledge existed regarding the risks associated with various management practices, as well as the epidemiology of Trichinella in the sylvatic cycle. Questions remained regarding processing requirements to render pork safe in ready to eat products and for home preparation. Much was to be learned concerning the parasite itself (genetics and phylogeny) as well as the biology of the parasite in its broad range of hosts. Here, we summarize contributions of Murrell and the APDL staff who worked with, and followed, him in the study of trichinellosis. Contributions include aspects of (1) prevalence of Trichinella in pigs in the U.S., (2) epidemiology and transmission, (3) wildlife reservoirs as sources of Trichinella infections for humans and pigs, (4) horses as a source of trichinellosis in humans, (5) post-harvest treatment of pork (heating, freezing, curing, irradiating) to kill Trichinella, (6) pre-harvest control strategies, and (7) phylogenetics, molecular epidemiology, and evolution. Murrell also supported establishment, and supplied materials for, the International Trichinella Reference Center in Rome, Italy which became an indispensable resource for understanding the biology and transmission of Trichinella spp. (Marucci et al., 2022).

4 Prevalence of Trichinella in pigs in the U.S

Trichinella testing of U.S. pigs/pork for purposes of export, commenced in 1898 but was terminated in 1906, when methods then employed were deemed unreliable (Table 3). Later surveys, employing the more reliable pepsin digestion method, yielded prevalence estimates of around 1% in farm-raised pigs. The prevalence was reduced drastically when feeding uncooked garbage to pigs was outlawed in the 1950s (Table 1, Table 3). A pilot project concerning the feasibility of using a digestion method for Trichinella testing at a commercial slaughterhouse reported the cost of testing to be around 10 cents per pig (83 cents in 2024, adjusting for inflation) (Andrews et al., 1969). The method was deemed costly and logistically impractical at that time, given the large number of pigs produced.Table 3 Prevalence of Trichinella in domestic pigs tested at USDA laboratories.

Table 3Year
tested	Region⁎	No. tested	Method	No. positive
(%)	Notes	Reference	
1898-1906	North central states	8,257,928	Trichinoscope
(discontinued in 1906)	212,228 (2.57)	1.41% contained live and 1.126% dead or degenerated larvae	Ransom (1915); Schwartz (1929)	
1936		2,341

4,740	Digestion

Digestion	130 (5.5)

53 (1.11)	Garbage fed

Grain fed	Schwartz (1936)	
1933-1937	11 states	6,622

6,484

1987	Digestion

Digestion

Digestion	60 (0.91)

286 (4.41)
11 (0.55)	Grain fed

Garbage fed

Cooked garbage fed	Schwartz, 1938, Schwartz, 1939	
1935		1973
2146
3254	Digestion	95 (4.8)
33 (1.5)
0	Garbage fed
Grain fed
Processed pork products	Hall, 1935, Hall, 1937	
1930’s		13,000

10,500	Digestion	126 (0.95)
599 (5.7)	Farm-raised, 1-5 larvae/100g
Garbage fed	Schwartz, 1940, Schwartz, 1952	
1948-1952		3,500	Digestion	20 (0.57)	1-5 larvae/100g pork	Schwartz (1960)	
1969	1 commercial plant in Fort Dodge, Iowa	482,392	Digestion	42 (0.008%)	The cost of testing was estimated to be 0.1$ per pig (see text).	Andrews et al. (1969)	
1971-1975	Illinois	50,235	Digestion	67 (0.13)	30,644 herds tested. See text	Hill et al. (1985)	
1982-1983	New England (CT, ME, MA, NH, RI, VT)	5,315	Digestion	39 (0.73)	Infected pigs were from small farms. Prevalence was higher in pigs slaughtered in small custom slaughterhouses versus commercial slaughterhouses	Schad et al. (1985b)	
1981-1983	Mid -Atlantic
(PA, NJ, IN, IL, VA, OH, NY, DE)	33,482	Digestion	196 (0.58)	Infected pigs from small backyard pigs in PA, NJ.	Duffy et al. (1985) ; Schad et al. (1985a)	
1983	New Jersey	63	Digestion	56 (88.9)	Poorly managed farm-see text for on farm epidemiology. T spiralis genotyped.
Fecundity compared with wildlife T. spiralis isolates	Schad et al. (1987); Murrell et al. (1987); Leiby et al. (1985)	
1984-1988	Illinois (East St. Louis), poorly managed farm)	66,854	Digestion	0	See text for epidemiological studies	Doby and Murrell (1989)	
1989-1990	Hawaii	509	ELISA	2 (0.3)	Infected pigs were garbage fed	Dubey et al. (1992)	
1990	NAHMS	3048 (lactating sows)	ELISA	5 (0.16)	Sows from 24 states. 5 infected sows were from different herds in NC, OH, PA	USDA-APHIS information sheet (2011); Gamble and Busch (1999)	
1995	NAHMS	7987 (finishers)	ELISA	1 (0.013)	16 states	Gamble and Busch (1999)	
1994-1995	North Carolina	2183	ELISA	1 (0.046)	Infected pig housed outdoors on dirt lot	Davies et al. (1998)	
2000	NAHMS	14,328	ELISA	0	17 states	USDA-APHIS information sheet (2018)	
2006	NAHMS	6238	ELISA	0	17 states	USDA-APHIS info sheet (2011)	
Not stated	New England

New Jersey	2132

1946	ELISA, digestion

ELISA, digestion	10 (0.47), larvae in 4 of 10

5 9 (0.26)	Risk assessment study (see text), 90 farms

90 farms	Gamble et al. (1999)	
	Trichina Certification Project	11,713	ELISA, digestion	0	461 farms	Pyburn et al. (2005)	
2007	Maryland, poorly managed farm	50	Digestion	17 (34.0)	T. spiralis genotyped in all pigs	Hill et al. (2010)	
2012	NAHMS	5705	ELISA	1	13 states	USDA-APHIS information sheet (2018)	
2024	Commercial pigs slaughter	>3,000,000	Digestion	0	Risk assessment	Gamble et al. (2024)	
⁎ CT = Connecticut, DE = Delaware, IN=Indiana, IL = Illinois, ME = Maine, MD = Maryland, MA = Massachusetts, NH=New Hampshire, NJ = New Jersey, NY=New York, OH=Ohio, PA = Pennsylvania, RI = Rhode Island, VA = Virginia, VT = Vermont.

Since the 1980s, surveys revealed a declining prevalence and reduced risk associated with Trichinella infection in the U.S. (Table 3). These studies, predominantly in commercial pigs, affirmed that modern pork production systems prevent exposure of pigs to sources of Trichinella. A recent survey used the gold standard artificial digestion method to test over 3 million pigs raised in the United States under confined housing and related biosecurity measures defined in the Pork Quality Assurance Plus (PQA+) pigs, (https://porkcheckoff.org/certification-tools/training-certification/pqa-plus/); it found no positive animals, providing a statistical prevalence of <1 infection in 1 million pigs (Gamble et al., 2024). As in most countries, backyard pigs raised and slaughtered outside of veterinary services, may still pose a risk to public health (Gamble, 2022).

5 Epidemiology and transmission

In the early 1980's, a major challenge was to identify Trichinella-infected pig farms and assess the risk of reservoir hosts. Within a very short time, >100,000 pig diaphragms, from major slaughterhouses, were tested for Trichinella infection (Table 3). The results culminated in the launch of an extensive program of research summarized below.

5.1 On farm epidemiology and modes of transmission

5.1.1 The role of cannibalism

The relative contributions of cannibalism, wildlife, and rats as sources of infection for pigs remained controversial until 1985. An opportunity arose to investigate this topic on a 1000 head, pig farm in Eastern Illinois with ongoing transmission of Trichinella (Hanbury et al.,1986). Initially, Trichinella larvae were detected in digested tissues of 124 (52.9%) of 234 pigs surveyed from 1973 to 1984. Pigs were raised with minimal biosecurity (non-controlled housing) but there was no feeding of garbage on the farm (Hanbury et al., 1986). Using Trichinella-free tracer pigs, and controlling for rat infestation, it was demonstrated that cannibalism was a major mode of Trichinella transmission.

5.1.2 The role of rats with access to infected pig carcasses

Until 1980, rats were considered important in the natural transmission of Trichinella, given that sows can kill and swallow a whole rat (Murrell et al., 1984). The role of rats was investigated on a poorly managed 123 head pig farm in New Jersey (Schad et al., 1987). Before starting the experiment, the farm was depopulated of pigs; tissues from 42 of 44 pigs, and sera of 20 of 41 pigs, tested positive for Trichinella. After depopulation, the farm was restocked with 102 Trichinella- free pigs supplied by USDA researchers. At the termination of the 12-month experiment, Trichinella larvae were detected in tissues of 43 of 46 pigs of the group with maximal exposure to rats, in 13 of 42 pigs with intermediate contact with rats, but not in any of the 14 pigs with minimal rat contact. Results of the experiment indicated that rat exposure could contribute to transmission as vector hosts where rats feed on dead pigs, given that pigs can also feed on rats.

Further epidemiological investigations were conducted on this farm (Murrell et al., 1987; Leiby et al., 1988). During a 21-month period, wildlife were trapped around this farm. Trichinella spiralis was found in seven of 15 (46.6%) skunks (Mephitis mephitis), one of three opossums (Didelphis virginianus), two of two feral domestic cats (Felis catus), and one of one raccoon (Procyon lotor), but not in any of 18 deer mice (Peromyscus spp.) or any of five shorttail shrews (Blarina brevicauda) (Leiby et al., 1988). Genetic typing indicated that all wildlife isolates of Trichinella resembled T. spiralis from domestic pigs on the farm. It was concluded that wildlife became infected with Trichinella from scavenging tissues from infected pigs.

5.1.3 Biological distinctions between the parasites predominating in domestic and sylvatic transmission cycles

Uncertainty prevailed concerning the identity of Trichinella isolates occurring in domestic pigs and wildlife prior to the advent of differential diagnostic tools exploiting genetic differences. The meat of black bears, feral pigs, and several furbearing mammals were all sources of potential human exposure to Trichinella, prompting USDA efforts to compare the characteristics of parasites derived from these sylvatic sources to those of parasites derived from domestic pigs (Leiby et al., 1985; Murrell et al., 1985). Notably, most parasites derived from wild carnivores demonstrated poor infectivity to pigs and mice. Only two of nine isolates from black bears, two of three isolates from raccoons, one isolate from a skunk, and one from opossum from the US were able to infect pigs as well as isolates derived from pigs (Murrell et al., 1985) (see Table 4 for sources of wildlife isolates). Some isolates from wildlife demonstrating strong infectivity for pigs came from the immediate vicinity of pig farms known to be circulating Trichinella infections. Infectivity to other laboratory animals (hamsters, jirds, deer mice, rats, and multimammate rats) also varied. Infectivity of a polar bear isolate of Trichinella (imported from Canada) was 15 times higher in foxes as compared with the Beltsville T. spiralis isolate from a pig (Murrell et al., 1985). It was concluded that meat from furbearers and other scavenging wildlife likely posed a threat to human health, and that such wildlife were susceptible to biologically distinct forms of Trichinella, only one of which reproduced efficiently in mice and pigs; they further, correctly concluded that, “...new methods, perhaps biochemical, are needed” to characterize wildlife samples and determine the genetic evidence for distinctions among species (then all diagnosed as T. spiralis). Ultimately (see below) such tools bore out distinctions among species of Trichinella (Murrell et al., 1987). One genotype, native to sylvatic hosts in North American carnivores, would ultimately be recognized as a new species named in his honor, T. murrelli (Pozio and La Rosa, 2000). Survey data indicates this is the most prevalent species circulating among wildlife in the temperate regions of North America (Table 4).Table 4 Prevalence of Trichinella in wildlife tested at or in collaboration USDA, APDL, Beltsville, Maryland.

Table 4Host	Region	Year	No.
tested	Method	#Pos.
(%)	Notes
(in bold, species characterized)	Reference	
Wild pig (Sus scrofa)	Texas-North central

Newcastle	1997–1998	226

1	Digestion

Digestion, bioassay, genotyping	0

1	

T. pseudospiralis	Gamble et al. (2005)	
Nationwide (APHIS)	2012–2013	3247 sera	ELISA	98
(3.0)		Hill et al. (2014)	
Nationwide (APHIS)	2012–2013	330-tongues	Digestion, genotyping	6	All 6 isolates were T. spiralis	Hill et al. (2014)	
Black bear (Ursus americanus)	New Hampshire	1986–1992	1515	Digestion	160 (10.5)	Private farm	Worley et al. (1993)	
Pennsylvania	1981–1983	2056	Digestion	37
(1.8)	Hunter killed. Biological characteristics of 9 Trichinella isolates described (see text-section 6.1.3). Two isolates (ISS345 and ISS 346) were used by Pozio and La Rosa (2000) for original description of T. murrelli.	Leiby et al. (1985); Murrell et al. (1985); Schad et al. (1986)	
1992	63 muscle
319 sera	Digestion

ELISA	2
(3.2)
6
(1.8)	Trichinella seen in histological sections of 3 of 162 bears	Dubey et al. (1994)	
New Hampshire	2003	1 bear meat frozen at minus 20 °C for 6 weeks	Digestion, bioassay	1	T. nativa	Hill et al. (2005)	
Maryland	2005–2011	389-tongues	Digestion	2
(0.5)	Hunter killed, T. murrelli	Dubey et al. (2013)	
Pennsylvania	2015–2016	181 adults	ELISA	6
(3)	Live, hibernating	Dubey et al. (2016)	
8 yearlings	1
(3.6)	
44 nursing cubs	0	
	North Carolina	1996	79	ELISA	0		Nutter et al. (1998)	
Grizzly bear (Ursus arctos)	Alaska	1973–1987	878	ELISA	427 (48.6)	355 (82.5%) of 430 from North, 62 (24.6%) of 252 from Interior, and 10 (5.1%) of 196 from South	Zarnke et al. (1997)	
Raccoon (Procyon lotor)	Pennsylvania	1982–1983	1170	Digestion	31
(2.6)	Biological characteristics of Trichinella isolate described (see text-section 6.1.3)	Leiby et al. (1985); Murrell et al. (1985)	
Illinois	1986–1988	143	Digestion	12
(8.3)		Doby and Murrell (1989)	
New Jersey	1983–1985 (?)	1	Digestion	1
(100)	Biological characteristics of Trichinella isolate described (see text-section 6.1.3)	Murrell et al. (1985); Leiby et al. (1988)	
Illinois	1987–1989	323	Digestion	5
(1.3)	T. murrelli	Snyder et al. (1993)	
Wisconsin	2005–2006	59	Digestion, histology,
serology, bioassay	11 (18.6)	T. murrelli was isolated by bioassay from tongue	Hill et al. (2008)	
Maryland	2007 (?)	38	Digestion	6	T. spiralis	Hill et al. (2010)	
Coyote (Canis latrans)	Illinois	1986–1988	5	Digestion	0		Doby and Murrell (1989)	
Illinois	1987–1989	1	Digestion	0		Snyder et al. (1993)	
Wisconsin	2005–2006	42	Digestion	11 (26.1)	Bioassay of tongue positive	Hill et al. (2008)	
Skunk (Mephitis mephitis)	Pennsylvania	1982–1983	51	Digestion	2
(3.9)		Leiby et al. (1985)	
New Jersey	1983–1985 (?)	15	Digestion	7
(47)	T. spiralis. Biological characteristics of Trichinella isolate described (see text-section 6.1.3)	Murrell et al. (1985); Leiby et al. (1988)	
Wisconsin	2005–2006	7	Digestion	0		Hill et al. (2008)	
Foxes	Illinois	1986-1988	28	Digestion	1
(3.5)		Doby and Murrell (1989)	
Red fox (Vulpes fulva)	Pennsylvania	1982–1983	73	Digestion	11 (15.1)		Leiby et al. (1985)	
2024	21	Compression,
PCR	7
(33.3)	T. murrelli	Dubey et al. (2024b)	
Illinois	1987–1989	9	Digestion	2
(17.1)	T. murrelli	Snyder et al. (1993)	
Gray fox (Urocyon cinereoargenteus)	Pennsylvania	1982–1983	90	Digestion	6
(6.7)	Fecundity of Trichinella isolates compared in hamsters, jirds, deer mice, rats, and multimmate rats	Leiby et al. (1985); Murrell et al. (1985)	
2004	1	Compression, PCR		T. murrelli	Thompson et al. (2024)	
Black vulture (Coragyps atratus)	Alabama	Not stated	1	Digestion, bioassay, genotyping	1	T. pseudospiralis, infective to pigs, mice, and chickens	Lindsay et al. (1995)	
Opossum (Didelphis virginianus)	Pennsylvania	1982–1983	384	Digestion	11
(2.9)		Leiby et al. (1985)	
Illinois	1986–1988	48	Digestion	1
(2.0)		Doby and Murrell (1989)	
New Jersey	1983–1985 (?)	3	Digestion	1
(33.3)	T. spiralis. Biological characteristics of Trichinella isolate described (see text-section 6.1.3)	Murrell et al. (1985); Leiby et al. (1988)	
Maryland	2007(?)	4	Digestion	2	T. spiralis	Hill et al. (2010)	
Mice (unspecified)	Illinois	1986–1988	8	Digestion	0		Doby and Murrell (1989)	
Deer mice (Peromyscus spp.)	New Jersey	1983–1985 (?)	18	Digestion	0		Leiby et al. (1988)	
Shorttail shrew (Blarina brevicaudata)	New Jersey	1983–1985 (?)	5	Digestion	0		Leiby et al. (1988)	
Rat (Rattus norvegicus)	Illinois	1986–1988	117	Digestion	1
(0.8)		Doby and Murrell (1989)	
New Jersey	1983–1984	443	Digestion	188 (42.4)	On an endemic, poorly managed on farm	Leiby et al. (1990)	
Muskrat (Ondatra zibethicus)	Pennsylvania	1982–1983	201	Digestion	0		Leiby et al. (1985)	
Mink (Mustela vison)	Illinois	1986–1988	35	Digestion	0		Doby and Murrell (1989)	
Pennsylvania	1982–1983	17	Digestion	1
(5.9)		Leiby et al. (1985)	
Feral domestic cat (Felis catus)	New Jersey	1983–1985 (?)	2	Digestion	2
(100)	T. spiralis	Leiby et al. (1988)	
Bobcat (Lynx rufus)	Mississippi	2017	25	Histology	1		Dubey et al. (2024a)	
Dog (Canis familiaris)	Virginia	2004	1 (muscle & tongue)	Histology, bioassay	1	T. murrelli	Dubey et al. (2006)	
Gray wolf (Canis lupus)	Montana	1987	1	Digestion, bioassay	1	Not freeze resistant	Worley et al. (1990)	

5.1.4 Risks posed to wildlife from poorly managed pig farms

An investigation was conducted over 18 months on a pig farm in Maryland with very poor management (Hill et al., 2010). This farm was quarantined because of animal welfare concerns. Cannibalism was discovered to be taking place in pigs and pigs were also feeding on wildlife carcasses. Necropsied tissues were tested for Trichinella infections by muscle digestion and serology. Trichinella spiralis was isolated from 17 of 50 pigs, after which the property was depopulated of all pigs.

USDA researchers trapped wildlife on and near the farm over an 18-month period, starting six months after pig depopulation. Initially, five of 14 raccoons and two of three opossums were found positive for T. spiralis. Twelve months later, only one of ten raccoons (old enough to have been alive during the swine farm's operation) was found infected with T. spiralis. In the last trapping, none of 14 raccoons were infected; one, older opossum was infected. At follow-up, the infected raccoons were adult males with an average weight of six kg; younger and light weight raccoons were not infected. These data led the team to conclude that wildlife acquired infection from a focus of Trichinella in pigs maintained by cannibalism on the farm, and that wildlife infection risk waned after cessation of transmission in pigs. Although scavenging wildlife acquired infection from the pigs, transmission among wildlife in the absence of pigs did not appear to be sustainable (Hill et al., 2010).

6 Wildlife reservoirs as sources of Trichinella for humans and pigs

The prevalence of human infections in the United States declined drastically between 1936 and 1971, based on the detection of Trichinella in cadavers, coinciding with a declining prevalence of Trichinella in domestic pigs (Zimmermann et al., 1973). Surveillance reports by the Centers for Disease Control and Prevention (CDC) between 1997 and 2012, reported outbreaks of trichinellosis epidemiologically associated with ingestion of pork products and game meats, with a predominance of cases originating from the latter (Roy et al., 2003; Wilson et al., 2015).

Feral pigs and black bears have been a significant source of Trichinella infections for humans in the mainland U.S. (Zimmermann et al., 1973; Murrell and Pozio, 2011). The number of feral pigs (Sus scrofa) in the U.S. is estimated to exceed 5 million, and their geographic range continues to expand. Feral pigs pose a threat to those raised in non-controlled housing by serving as reservoirs for a variety of pathogens including Toxoplasma and Trichinella (Dubey et al., 2020b). The USDA's Wildlife Services has been charged with controlling feral pigs to mitigate environmental damage. They routinely collect sera from a subset of feral pigs for pathogen surveillance. In two such surveys, conducted 2006–2010 from 32 U.S. states, Trichinella antibodies were detected in 3.0% of samples tested; viable T. spiralis larvae were recovered from 6 of 330 (1.8%) tongues sampled (Table 4). In a follow up survey from 2014 to 2020, antibodies were detected in 12.4% of 7467 feral pigs tested by ELISA (Cleveland et al., 2024). These data indicate that a sylvatic cycle of T. spiralis continues, and surveillance will be needed to monitor outdoor herds exposed to feral pigs. The carcass of a single improperly cooked infected pig can be a source of trichinellosis for many people. In addition to T. spiralis, T. pseudospiralis has been documented in feral pigs (Table 4).

Bears are another important wildlife reservoir of Trichinella infection in the U.S. Thousands of bears are hunted in the U.S. each year. Approximately 3500 black bears (Ursus americanus) are legally harvested each year in Pennsylvania, alone, during the November (Thanksgiving week) hunting season (Dubey et al., 2016).Outbreaks of trichinellosis continue to occur in the U.S., mostly associated with ingestion of raw or undercooked bear meat (Table 5). Proper cooking is the only way to prevent trichinellosis, because freezing will not kill all Trichinella genotypes (e.g. T. nativa) (Table 5).Table 5 Game as source of human trichinellosis in the USA.

Table 5Year	State	No of persons
affected	Suspected
source	Trichinella in
game meat	Notes	Reference	
2022	AZ,
MN
SD	6	Bear meat grilled	Viable larvae in bear meat frozen 45 days	Bear from northern Saskatchewan, Canada	Cash-Goldwasser et al. (2024)	
2016–2017	CA	12	Raw pork dish	Larvae in left over pork	Farm raised wild boar	Heaton et al. (2018)	
2016	AK	9- First outbreak −4 family members	Raw or pan-fried walrus meat	Walrus meat not available for testing	Hunted walruses were from same area	Springer et al. (2017)	
2017	AK	Second outbreak −5 neighbors	Shared walrus meat	Walrus meat not available for testing		Springer et al. (2017)	
2011	MN	2- carcass dressed gloveless, meat consumed		Larvae in frozen boar meat	Wild boar hunted from private farm in Iowa	Holzbauer et al. (2014)	
2008–2012	25 states and
DC	90 cases	Pork products in 22 cases, non-pork products in 45 cases	No data	No data	Wilson et al. (2015)	
2008	CA	23 confirmed, 6 probable	Bear meat consumption	Larvae in bear paw muscle	Trichinella murrelli -associated	Hall et al. (2012)	
2005	NH	1 patient	Bear meat consumption suspected	Viable larvae from bear meat frozen -20 °C for 4 months	Trichinella nativa -associated	Hill et al. (2005)	
2003	NY	1 patient	Ate nearly 1 kg of raw bear meat	Viable larvae recovered from frozen bear meat	Trichinella nativa -associated	Smith et al. (2004)	
2003	TN	2 patients, husband, wife	Ate medium rare bear meat	Larvae in histological sections of bear meat	Bear was shot in Canada and transported to TN.	Smith et al. (2004)	
1997–2003	

AK
4 patients,

CA
8 patients

IL
4 patients

MN
5 patients,

OH8 patients	33 outbreaks	Implicated meat

Bear jerkey,

Bear meat,
Pork sausages, pork jerkey

Pork sausages,

Bear jerkey,

Bear meat			Roy et al. (2003)	
1995	ID	7 of 15 who ate cougar jerkey		Trichinella larvae recovered from frozen cougar meat	Trichinella nativa suspected	Dworkin et al. (1996)	
AK = Alaska, AZ = Arizona, CA = California, DC=District of Columbia, ID=Idaho, IL = Illinois, MN = Montana, NH=New Hampshire, NY=New York, OH=Ohio, SD=South Dakota.TN = Tennessee.

7 Horses as a source of human trichinellosis

Typical hosts for Trichinella are predatory and scavenging carnivores and omnivores, given that ingestion of infected tissue constitutes the sole means of contracting infection. Surprisingly, the herbivorous nature of horses did not prevent them, when intentionally fed meat, from contracting infection and serving as a public health risk (Murrell et al., 2004a, Murrell et al., 2004b). Horses will eat rats or food augmented with meat scraps (Murrell et al., 2004a, Murrell et al., 2004b). Outbreaks of clinical trichinellosis have occurred in Europe in people who ate raw or undercooked horse meat, including meat imported from other countries (see Table 1). The biology of Trichinella in horses has been shown to differ from that in pigs. In horses, tongue is the most parasitized tissue (Gamble et al., 1996., Hill et al., 2007a, Hill et al., 2007b). Horses can be successfully infected by feeding Trichinella infected tissues (Table 1). In experimentally infected horses, IgG antibodies peaked six-ten weeks post-inoculation (p.i.) but waned by 26 weeks p.i.; however, horses continued to harbor viable Trichinella larvae even after turning serologically negative (Hill et al., 2007b). Additionally, T. spiralis exhibited resistance to freezing in tissues from experimentally infected horses (Hill et al., 2007a). Horse meat is rarely eaten in the U.S., where it is banned as a human food product (Whiting, 2007).

8 Thermal, irradiation, and chemical (curing) treatments of pork to kill Trichinella

The USDA's Food and Safety Inspection Service (FSIS) provides guidelines and regulatory oversight for the safety of meat and meat products. The FSIS depends on the USDA's research agency, ARS, to develop a scientific basis for such guidelines. The efficacy of various interventions to kill Trichinella in pork had been established by various studies (see Table 1). A USDA effort standardized this assessment, recruiting the talents of meat scientists, statisticians, radiation biologists, and food science specialists (Kotula et al., 1983). For example, for cooking/freezing parameters, temperatures of water or chemical baths were recorded digitally by thermocouples embedded in homogenized samples of infected meat pressed to uniform thickness. Similar procedures were adapted not only for Trichinella but also for Toxoplasma gondii (Dubey, 2010), so that data could be used to standardize safe processing requirements for these two organisms.

8.1 Cooking

Thermal death curves were generated for killing of T. spiralis in pork at different temperatures (Kotula et al., 1983). Using conventional cooking methods (not microwave), Trichinella was killed in 47 min at 52 °C, in 6 min at 55 °C, and in 1 min at 60 °C (Kotula et al.,1983). USDA (2018) used these data to require that pork be cooked for 2 h at 52.2 °C, for 15 min at 55.6 °C, or for 1 min at 60 °C. Currently, USDA recommends consumers cook fresh pork until the internal temperature reaches 63 °C (145 °F) (Gamble, 2021), based in large part on research conducted in collaboration with scientists at APDL.

8.2 Freezing

Low temperature death curves for T. spiralis were developed using samples frozen at 19 temperatures ranging from -1 °C to -193 °C (Kotula et al., 1990). Trichinella spiralis in pork was killed instantaneously at -23 °C. USDA (2018) guidelines specify temperatures for freezing pork intended for use in processed products (Gamble, 2021). Further studies indicated that in addition to T. spiralis, other North American genotypes of Trichinella (T. murrelli, T. pseudospiralis, T. nativa) are also killed by freezing (Hill et al., 2009). However, these data do not apply to horse meat infected with T. spiralis. USDA researchers established that unlike in pork, T. spiralis in horse meat can survive for at least eight weeks in meat stored at -18 °C (Hill et al., 2007a). It should be noted that some freeze-resistant parasites circulating among wildlife hosts (T. nativa and T6) can survive for years at subzero temperatures in native host tissues.

8.3 Curing

Preservation of pork in salt and spices and drying (curing) has been used for a long time to produce ready-to-eat hams, sausages, pepperoni, and other pork products (Lin et al., 1990a, Lin et al., 1990b). Therefore, USDA scientists examined how curing efficacy responds to changes in pH and to the concentration of one such salt, NaCl on Trichinella and Toxoplasma (Hill et al., 2017; Dubey et al., 2020a). Until recently, producers lacked a model to judge the efficacy of the curing process. Previous studies judged the efficacy of curing by assessing larval motility. However, physical appearance is a poor judge of the viability of the parasite; some motile larvae are not infectious, and some apparently inert larvae remain infective to mice. The viability of larvae was tested by bioassay in mice. Salt and pH proved important in the efficacy of curing. Salt concentrations above 1.3%, in combination with a pH of 4.6, had deleterious effects on larvae. Trichinella larvae were killed after eight days incubation in a salt concentration of 2.8%. Other salts, such as nitrous salts, may have different effects.

8.4 Irradiation

The United States has a huge stockpile of cessium-137, and food irradiated at low doses does not affect the taste, color, or texture of meats. Cessium-137 has excellent penetration qualities. In the 1980's, pork producers envisaged irradiating whole pig carcasses to kill parasites in pork. In collaboration with the U.S. Department of Energy, USDA parasitologists and radiobiologists at the Sandia National Laboratories determined that pork experimentally infected with the Beltsville strain of T. spiralis could be rendered noninfectious by exposure to a low dose (30 krads) of cessium-137 (Brake et al., 1985). This was the basis for the first FDA and FSIS approval of irradiation for meat (irradiation of strawberries was first for any food). Lack of public acceptance of irradiated foods, however, dissuaded implementation of this measure.

8.5 Hydrodynamic pressure

In an initial study USDA research determined that the hydrodynamic pressure (MPa 55–60) typically used for meat tenderization, had no demonstrable effect on the viability of T. spiralis (Gamble et al., 1998). In subsequent experiments, T. spiralis was inactivated in pig masseter by all treatments of HPP as confirmed by both microscopy and mouse bioassays; infected pig masseter muscles were pressurized at 483 and 600 MPa for 0.5 to 5 min (Porto-Fett et al., 2010). Additionally, this HPP level treatment drastically reduced- other microbial pathogens (Listeria monocytogenes, Escherichia coli O157:H7, Salmonella spp.).

9 Preventive strategies

9.1 Prospects for vaccination of pigs against Trichinella and development of resistant breeds of swine

In the 1980's, strategies to control transmission of T. spiralis on high-risk farms included efforts to vaccinate pigs and to breed swine resistant to Trichinella (Murrell, 1983, Murrell, 1985a, Murrell, 1985b, Murrell, 1985c). Immunity to T. spiralis in pigs and mice was explored at Beltsville for the development of immune-based diagnostic methods and to foster immune protection (Alizadeh and Murrell, 1985; Gamble, 1985a, Gamble, 1985b; Gamble and Murrell, 1986; Lunney and Murrell, 1988). Although there is no in utero transmission of T. spiralis in pigs, protective antibodies were found to be transferred via colostrum (Marti and Murrell, 1989). Pigs inoculated with a low dose of live T. spiralis larvae, but not with crude antigens, were found to induce acquired resistance to challenge with heavy doses of larvae (Gamble, 1985a; Murrell, 1985a; Marti and Murrell, 1986b; Marti et al., 1987; Lunney and Murrell, 1988). Pigs immunized with excretory secretory larval antigens (Gamble et al., 1986) or stichosome antigens alone, were not effective (Murrell, 1985c; Murrell and Despommier, 1984). Immunity to Trichinella infection in mice was found to be mediated by both humoral cellular immune components (Urban Jr. et al., 2000). Differences in immune responses were noted in mice versus pigs. Immunity in pigs was directed against the muscle dwelling larvae but not against adults in the intestine, whereas worms were expelled from the intestine of immune mice; this discovery posed a challenge for developing an effective vaccine for pigs (Gamble and Murrell, 1987). Marti et al. (1987) showed that immunized pigs responded most strongly to newborn larvae during their humeral migration. Notably, immunizing pigs with only inactivated newborn larvae proved effective. Importantly, this distinguished rodent and porcine responses to infection and immunization, rendering rodents of limited value as an experimental model in testing candidate vaccines. Using an inbred miniature swine herd at Beltsville, major histocompatibility genes were found to regulate swine immune responses to Trichinella; only pigs of the SLAa’a phenotype demonstrated high resistance to Trichinella (Lunney and Murrell, 1988; Madden et al., 1990, Madden et al., 1993; Dillender and Lunney, 1993). These research efforts demonstrated that the parasite is quite capable of subverting innate host resistance as well as acquired immunity, rendering impractical immunization, or breeding as widely applicable control strategies.

9.2 Educating hunters

Clinical trichinellosis in humans in the U.S. is now exceedingly rare; most cases stem from consuming meat of feral pigs or bears (Hall et al., 2012; Holzbauer et al., 2014). Prevalence of Trichinella in bears (Table 4) is not likely to decrease soon; viscera of hunted animals, when left in open or shallow coverings, are scavenged by other carnivores that in turn could serve as food for bears, perpetuating the cycle of Trichinella in wildlife. Educating hunters concerning Trichinella transmission can minimize the prevalence of this parasite, and there is some scientific evidence of success as illustrated by the first such effort initiated by ARS researchers.

An epidemiologic investigation was conducted on feral pigs in a private game park in New Hampshire in the U.S. (Worley et al.,1993). In 1987, a control program was introduced in the game park to reduce transmission of Trichinella in feral pigs. Hunters were issued specific permits, and they were required to incinerate viscera rather than field dressing each hunted carcass. Samples of tongues, diaphragms, and muscle scraps were collected from each hunted pig and shipped cold to ARS laboratory in Beltsville for testing (see Table 4). During the 7-year control program, Trichinella was detected in a total of 160 (10.5%) of 1515 hunted pigs. Before the intervention, prevalence was 15% in 1986 and 20% in 1987. Thereafter, prevalence decreased from 20% in 1988 (15/77) to 12% in 1989 (34/284), 11.2% in 1990, (17/152) 6.9% in 1991; (19/273); and 3.6% in 1992 (13/373), when this experiment was terminated (Worley et al., 1993).

9.3 Preharvest control and Trichinella certification programs

The USDA Animal and Plant Health Inspection Service (APHIS) is charged with regulating efforts to prevent livestock infections. APDL scientists at Beltsville played a major role in helping APHIS achieve its goals to reduce the risk of Trichinella transmission from eating pork (Gamble, 2022; Gamble et al., 2000, Gamble et al., 2001; Pyburn et al., 2005). These investigations involved developing and optimizing testing methods (ELISA) and direct testing of pork for Trichinella larvae (Gamble, 2021).

Following the recommendations of the International Commission on Trichinellosis (ICT) in 2000 (Gamble et al., 2000), regarding pre-harvest control, USDA scientists worked with APHIS and the U.S. pork industry to develop a voluntary certification program based on good management practices to exclude risk for exposure to Trichinella. This program included producer education, and several levels of auditing. While this voluntary program did not achieve widespread participation due to a lack of incentives, many of the principles developed were ultimately incorporated into the U.S. Pork Quality Assurance Plus program (https://lms.pork.org/Tools/View/pqa-plus), which includes participation by >90% of U.S. pork producers.

9.3.1 Development of specific and sensitive ELISA

A highly specific and sensitive ELISA was developed using excretory and secretory (ES) products from in vitro cultured T. spiralis larvae (Gamble et al., 1983, Murrell et al., 1986; Gamble, 1998; Oliver et al., 1989; Ivanoska et al., 1989) to overcome sub-optimal specificity when using somatic antigens in the ELISA originally developed by Dutch researchers (Ruitenberg et al., 1974; Van Knappen et al.,1976). For preparation of ES antigens, muscle larvae from experimentally infected rats were incubated in a cell culture medium, filtered to remove larvae and the filtrate dialyzed (Gamble et al., 1983). Further advances in ELISA technology for detecting Trichinella included identifying, purifying, cloning, and expressing diagnostic antigens (Gamble and Graham, 1984; Zarlenga and Gamble, 1990). The ELISA has been extensively validated, using the digestion method for comparison (Murrell et al., 1986; Pyburn et al., 2005) in pigs infected with T. spiralis and other Trichinella species (Kapel and Gamble, 2000) and is widely used for surveillance purposes.

9.3.2 Large scale testing of pork for evidence for muscle larvae

A variety of studies performed since the 1980's assessed the prevalence of Trichinella infection in U.S. pigs. Some of these studies were conducted in collaboration with other USDA agencies, including the 1990, 1995, 2000 and 2006 National Animal Health Monitoring Surveys (NAHMS). Other studies were regional in nature, focusing on farms and regions with elevated likelihood of infection. Additional studies were performed to inform the industry about progress of eradication of infection in commercial pigs; some results were only reported internally. These studies are summarized in Table 3.

Beginning in 1988, the APDL initiated a program at the request of the Agricultural Marketing Service (AMS) to train and monitor the testing of horses slaughtered for export (AMS Trichinae Export Program). This program responded to outbreaks of trichinellosis in France and Italy linked to consumption of horsemeat, purportedly from the U.S. The success of this program attracted participation by the U.S. pork industry and opened new export markets. All testing performed in the AMS program employed artificial digestion according to standard practices. From 1996 to 2010, six pork slaughter facilities tested a total of 38,755,374 samples, all of which tested negative. No positive horses were ever documented in the U.S., despite a testing program required for all horse slaughter plants commencing after the outbreaks in 1987. Naturally infected horses have been reported from Serbia, Romania and Poland (Murrell et al., 2004a, Murrell et al., 2004b; Liciardi et al., 2009; Iacob et al., 2022). A horse testing positive for T. murrelli was reported to have been imported from the U.S. (Scandrett et al., 2018).

9.3.3 Continued support for FSIS personnel performing surveillance testing

A recent USDA review of methods (serology, DNA detection, muscle digestion) for the detection of Trichinella in pork, reaffirmed that pepsin muscle digestion provides the most efficient and cost-effective method for surveillance, but pointed to future possibilities to realize gains in other diagnostic methodologies (Barlow et al., 2021). The ARS's APDL propagates the Beltsville T. spiralis isolate in mice and rats. It employed this method in its recent comprehensive survey of Pork Quality Assurance Plus pigs (Gamble et al., 2024) and provides “check samples” to the Agricultural Marketing Service for use in testing the proficiency of personnel performing tests required for export to certain markets. Results of experimental T. spiralis infections in pigs and rats, conducted four decades ago at Beltsville, indicated that tongue is one of the most heavily infected tissues and most convenient for epidemiological studies (Kotula et al., 1984; Marti and Murrell, 1986a).

9.3.4 Chemotherapeutic inactivation of parasites

Although most commercial pigs are raised under conditions of biosecurity that protect them from infection risk, USDA researchers verified that it is possible to render muscle larvae of T. spiralis incapable of causing further infection by administration of mebendazole (Fredericks et al., 2024). Treating with 100 mg/kg (but not 5 or 50 mg/kg) for three- five days renders encysted Trichinella muscle larvae non-infective. This provides producers of pigs at higher risk (e.g., those raised on pasture) with means to mitigate such risk.

10 Genetics, molecular epidemiology, evolution

Reviews regarding the systematics, molecular epidemiology, and evolution of Trichinella demonstrate the breadth of research from an international community dedicated to understanding the biology of these worms (Zarlenga et al., 2020; Rosenthal et al., 2021; Bilska-Zając et al., 2022). Contributions of USDA researchers are summarized here.

10.1 Taxonomy

As stated previously, USDA researchers played an important role in taxonomy of Trichinella species as summarized in in Table 2.

10.2 Diagnostics-PCR

Early efforts to identify DNA differences among Trichinella lineages were focused on restriction fragment length polymorphisms (RFLPs) and the development of DNA hybridization probes. (Dame et al., 1987). Subsequently, Zarlenga et al. (1991) developed a DNA probe to differentiate T. murrelli from T. spiralis. These findings led to the conclusion that, contrary to popular belief, T. murrelli and not T. spiralis is the predominant species in the U.S. wildlife.

Progress was made concerning molecular diagnostics for Trichinella by identifying a size polymorphism in expansion segment 5 of the 28S ribosomal subunit that differed among species (Zarlenga and Dame, 1992). Subsequently, microsatellite repeat markers were developed that differentiated among different populations (Zarlenga et al., 1996). Ultimately, development of a multiplex PCR that amplified several different loci in the ribosomal DNA in a single reaction differentiated unique banding patterns for all lineages of Trichinella then known (Zarlenga et al., 1999). The multiplex assay was refined over the years to include newly identified species (Zarlenga et al., 2001) and remains the gold standard for diagnostics laboratories worldwide.

10.3 Epidemiology, outbreak tracing

Researchers at the USDA continue to advance efforts to understand the epidemiology of Trichinella and develop new molecular tools to differentiate Trichinella isolates and track outbreaks in near real-time (La Rosa et al., 2012). Results indicated that T. spiralis in Europe and the Americas harbor far less variation than do T. spiralis in East Asia, and far less variation than European populations of T. britovi, despite occupying an especially large geographic expanse. Microsatellites were later used to trace Trichinella outbreaks in Poland (Bilska-Zajac et al., 2021; Bilska-Zając et al., 2022). Findings from this collaborative team between USDA and European researchers helped differentiate local outbreak samples, connect them to wildlife genotypes, and separate them from circulating strains in wild boars (Bilska-Zając et al., 2022).

10.4 Evolution

USDA researchers have also been central to uncovering the ancient and more recent evolutionary history of Trichinella. Using ribosomal and mitochondrial DNA sequences to reconstruct the relationships among the extant species of Trichinella were uncovered and findings provided as to how these species evolved (in mammals) and moved across the globe (Zarlenga et al., 2006). This biogeographic hypothesis was affirmed by whole genome sequencing data (Korhonen et al., 2016).

USDA researchers contributed additional insights concerning more recent evolutionary events, including ongoing processes such as hybridization between lineages (Franssen et al., 2015).

The advent of affordable genomic sequencing enabled further studies into the evolutionary history of T. spiralis populations. Researchers showed that European T. spiralis populations appear to have grown and ebbed with the fate of European pigs, in contrast to the history of Asian pig populations (Hecht et al., 2018) and that European T. spiralis diverged from Asian T. spiralis prior to the domestication of swine (Thompson et al., 2021).

To understand the circumstances that enabled Trichinella's ancestors to transition from free-living to intracellular parasites genes present in parasites but absent from free-living nematodes were identified (Mitreva et al., 2011). Additionally, a detoxifying enzyme (cyanase) that enables Trichinella to thrive inside mammalian cells was identified (Zarlenga et al., 2022). Trichinella evidently acquired the gene encoding this enzyme from a plant or fungus, via horizontal gene transfer (Zarlenga et al., 2019). This work helps to explain the ability of Trichinella to survive inside a muscle cell for decades.

10.5 Genomics

USDA researchers led efforts to understand Trichinella genomics, providing essential research resources for the wider community the first draft genome for T. spiralis was published (Mitreva et al., 2011). Using the emerging shotgun sequencing approach the mitochondrial genome of T. spiralis was sequenced and compared with T. murrelli. They uncovered cryptic variation across the mitochondrial genome by sequencing to great depth, demonstrating that pooled isolates are not uniform (Webb and Rosenthal, 2010, Webb and Rosenthal, 2011; Thompson et al., 2017).

11 Conclusions

USDA scientists have contributed to aspects of control of Trichinella infection in pigs and concomitant prevention of public health risk to humans for >125 years. In the latter part of the 19th century and the first half of the 20th century, these efforts were primarily reactionary in support of domestic and export markets for fresh pork. Renewed interest in documenting pork safety began in the 1960s, and with a focus on this parasite by Murrell and colleagues, the Beltsville Agricultural Research Center became a hub of research of all aspects of Trichinella and trichinellosis. The work of various contributors included studies to support USDA regulatory agencies FSIS and APHIS in domestic and foreign markets including strategies for pre- and post-harvest mitigations, as well as studies on aspects of basic biology, biochemistry, host immunology, detection and surveillance, epidemiology, and phylogeny and evolutionary relationships. USDA scientists also served in leadership and advisory roles in a variety of national and international organizations (e.g. ICT, WOAH, FAO). Today, modern production systems drive the incidence of Trichinella to negligible levels. The U.S., like many countries, does not have cases of trichinellosis acquired from commercial pork. Consistent with HACCP principles, responsibility has shifted to producers and processers to assure a safe and wholesome product. Production standards like PQA+ in the U.S. pork industry facilitate success in assuring absence of infection in commercial pork products. Nevertheless, Trichinella remains a fascinating model for research studies in areas such as the host parasite relationship, genetic diversity and molecular evolution.

CRediT authorship contribution statement

Jitender P. Dubey: Writing – original draft, Methodology, Investigation, Conceptualization. Peter C. Thompson: Writing – original draft. Valsin Fournet: Writing – review & editing. Dolores E. Hill: Writing – review & editing, Writing – original draft. Dante Zarlenga: Writing – review & editing, Writing – original draft. H. Ray Gamble: Writing – review & editing, Writing – original draft. Benjamin M. Rosenthal: Writing – review & editing, Writing – original draft, Methodology, Investigation, Conceptualization.

Declaration of competing interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Appendix A Supplementary data

Supplementary material 1

Image 1

Supplementary material 2

Image 2

Acknowledgements

We thank Oliver Kwok and Larissa de Araujo for bibliography and Dr. Jean Dupouy-Camet for advice concerning the history of Trichinella. We thank the staff of the National Agricultural Library for providing century- old literature on Trichinella. This work was supported by USDA-ARS project 8042-320000-113-00D

☆ This paper is a tribute to Kenneth Darwin Murrell, retired from USDA, for his monumental contributions to research and control of Trichinella.

Appendix A Supplementary data to this article can be found online at https://doi.org/10.1016/j.fawpar.2024.e00239.
==== Refs
References

Alizadeh H. Murrell K.D. Requirement of bone-marrow cells and mast cells for the immune expulsion of Trichinella spiralis in mast-cell deficient W/Wv mice Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984. Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 31 35
Ancelle T. History of trichinellosis outbreaks linked to horse meat consumption 1975-1998 Euro Surveill. 3 8 1998 10.2807/esm.03.08.00120-en
Andrews J.S. Part IV. Animal parasitology in the United States Department of Agriculture 1886-1984 Wiser V.D. Larry D.M. 100 Years of Animal Health 1884–1984 1987 The Associates of the National Agricultural Library, Inc Beltsville, Maryland 113 166
Andrews J.S. Zinter D.E. Schulz N.E. Evaluation of the trichinosis pilot project Proceedings Seventy-third Annual Meeting of the United States Animal Health Association. Sheraton-Schroeder Hotel, Milwaukee, Wisconsin. October 12-17, 1969 1969 332 353
Barlow A. Roy K. Hawkins K. Ankarah A.A. Rosenthal B. A review of testing and assurance methods for Trichinella surveillance programs Food Waterborne Parasitol. 24 2021 10.1016/j.fawpar.2021.e00129 e00129
Bilska-Zajac E. Tonazi D. Pozio E. Rozycki M. Cencek T. Thompson P.C. Rosenthal B.M. La Rosa G. Parasit. Vectors 14 2021 359 10.1186/s13071-021-04861-9 34243814
Bilska-Zając E. Rosenthal B. Thompson P. Trich-tracker - a practical tool to trace Trichinella spiralis transmission based on rapid, cost-effective sampling of genome-wide genetic variation Int. J. Parasitol. 52 2022 145 155 10.1016/j.ijpara.2021.08.002 34543631
Bowditch H.I. Trichinella spiralis Boston Med. Surg. J. 26 1842 117 128
Brake R.J. Murrell K.D. Ray E.E. Thomas J.D. Muggenburg B.A. Sivinski J.S. Destruction of Trichinella spiralis by low-dose irradiation of infected pork J. Food Saf. 7 1985 127 143
Brantz D. Animal bodies, human health, and the reform of slaughterhouses in the nineteenth-century Berlin Lee P.Y. Meat, Modernity, and the Rise of the Slaughterhouse 2008 University of New Hampshire Press Durham, New Hampshire 71 85
Britov V.A. Boev S.N. Taxonomic rank of various strains of Trichinella and their circulation in nature (in Russian) Vestnik Akademii Nauk KSSR 28 1972 27 32
Campbell W.C. History of trichinosis: Paget, Owen and the discovery of Trichinella spiralis Bull. Hist. Med. 53 1979 520 552 397841
Campbell W.C. Historical introduction Campbell W.C. Trichinella and Trichinosis 1983 Plenum Press New York and London 1 30
Campbell W.C. Denham D.A. Chemotherapy Campbell W.C. Trichinella and Trichinosis 1983 Plenum Press New York and London 335 366
Cash-Goldwasser S. Ortbahn D. Narayan M. Fitzgerald C. Maldonado K. Currie J. Straily A. Sapp S. Bishop H.S. Watson B. Neja M. Qvarnstrom Y. Berman D.M. Park S.Y. Smith K. Holzbauer S. Outbreak of human trichinellosis - Arizona, Minnesota, and South Dakota, 2022 Morb. Mortal. Wkly Rep. 73 2024 456 459
Cassedy J.H. Applied microscopy and American pork diplomacy: Charles Wardell Stiles in Germany 1898-1899 ISIS 62 1971 4 20 4951010
Cleveland C.A. Haynes E. Callaghan K.C. Fojtik A. Coker S. Doub E. Brown V.R. Majewska A.A. Yabsley M.J. Distribution and prevalence of antibodies to Trichinella spp. and Toxoplasma gondii in wild pigs (Sus scrofa) in the United States Vet. Parasitol. 325 2024 110090 10.1016/j.vetpar.2023.110090 38043480
Dame J.B. Murrell K.D. Worley D.E. Schad G.A. Trichinella spiralis: genetic evidence for synanthropic subspecies in sylvatic hosts Exp. Parasitol. 64 1987 195 203 2888683
Davies P.R. Morrow W.E.M. Deen J. Gamble H.R. Patton S. Seroprevalence of Toxoplasma gondii and Trichinella spiralis in finishing swine raised in different production systems in North Carolina, USA Prev. Vet. Med. 36 1998 67 76 10.1016/s0167-5877(98)00072-5 9677628
Dillender M.J. Lunney J.K. Characteristics of T lymphocyte cell lines established from NIH minipigs challenge inoculated with Trichinella spiralis Vet. Immunol. Immunopathol. 35 1993 301 319 10.1016/0165-2427(93)90041-2 7679239
Doby P.B. Murrell K.D. Illinois trichinellosis control program Tanner C.E. Martinez-Fernandez A.R. Bolas-Fernandez F. Proceedings of the Seventh International Conference on Trichinellosis, October 2–6, 1988, Alicante, Spain 1989 Consejo Superior de Investigaciones Científicas Press Madrid, Spain 432 438
Dubey J.P. Toxoplasmosis of Animals and Humans 2nd ed. 2010 CRC Press Boca Raton, FL
Dubey J.P. Gamble H.R. Rodrigues A.O. Thulliez P. Prevalence of antibodies to Toxoplasma gondii and Trichinella spiralis in 509 pigs from 31 farms in Oahu, Hawaii Vet. Parasitol. 43 1992 57 63 10.1016/0304-4017(92)90048-e 1496803
Dubey J.P. Briscoe N. Gamble R. Zarlenga D. Humphreys J.G. Thulliez P. Characterization of Toxoplasma and Trichinella isolates from muscles of black bears in Pennsylvania Am. J. Vet. Res. 55 1994 815 819 7944020
Dubey J.P. Hill D.E. Zarlenga D. A Trichinella murrelli infection in a domestic dog in the United States Vet. Parasitol. 137 2006 374 378 10.1016/j.vetpar.2006.01.008 16483719
Dubey J.P. Hill D. Zarlenga D. Choudhary S. Ferreira L.R. Oliveira S. Verma S.K. Kwok O.C.H. Driscoll C.P. Spiker H. Su C. Isolation and characterization of new genetic types of Toxoplasma gondii and prevalence of Trichinella murrelli from black bear (Ursus americanus) Vet. Parasitol. 196 2013 24 30 10.1016/j.vetpar.2013.02.007 23537944
Dubey J.P. Brown J. Ternent M. Verma S.K. Hill D.E. Cerqueira-Cézar C.K. Kwok O.C.H. Calero-Bernal R. Humphreys J.G. Seroepidemiologic study on the prevalence of Toxoplasma gondii and Trichinella spp. infections in black bears (Ursus americanus) in Pennsylvania, USA Vet. Parasitol. 229 2016 76 80 10.1016/j.vetpar.2016.09.013 27809983
Dubey J.P. Cerqueira-Cézar C.K. Murata F.H.A. Kwok O.C.H. Hill D. Yang Y. Su C. All about Toxoplasma gondii infections in pigs: 2009-2020 Vet. Parasitol. 288 2020 109185
Dubey J.P. Cerqueira-Cézar C.K. Murata F.H.A. Verma S.K. Kwok O.C.H. Pedersen K. Rosenthal B.M. Su C. Genotyping of viable Toxoplasma gondii from the first national survey of feral swine revealed evidence for sylvatic transmission cycle, and presence of highly virulent parasite genotypes Parasitology 147 2020 295 302 31739817
Dubey J.P. de Araujo L.S. Gupta A. Kwok O.C.H. Rosenthal B.M. Trichinella and at least three species of Sarcocystis parasitize the muscles of bobcats (Lynx rufus) from Mississippi J. Parasitol. 2024 10.1645/24-6
Dubey J.P. Thompson P.C. de Araujo L.S. Gupta A. Kay S. Kwok O.C.H. Battle J. Van Why K. Brown J.D. Rosenthal B.M. Trichinella murrelli identified in red foxes (Vulpes vulpes) in Pennsylvania Vet. Parasitol. Reg. Stud. Rep. 54 2024 101086 10.1016/j.vprsr.2024.101086
Duffy C.H. Schad G.A. Leiby D.A. Murrell K.D. Slaughterhouse survey for swine trinchinosis in northeast United States Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984.Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 224 228
Dupouy-Camet J. An example of one health approach: a timeline of the history of trichinellosis control Bull. Acad. Vét. France 177 2024 1 12
Dupouy-Camet J. Murrell K.D. FAO/WHO/OIE Guidelines for the Surveillance, Management, Prevention and Control of Trichinellosis 2007 World Animal Health Organization Paris
Dupouy-Camet J. Kapel C.M.O. Golab E. Scandrett B. Zarlenga D. Early days of the international commission on Trichinellosis (1958-1972) Ann. Parasitol. 66 2020 259 263 10.17420/ap6602.264 32592563
Dworkin M.S. Gamble H.R. Zarlenga D.S. Outbreak of trichinellosis associated with eating cougar jerky J. Infect. Dis. 174 1996 663 666 10.1093/infdis/174.3.663 8769634
Franssen F. Bilska-Zajac E. Deksne G. Sprong H. Pozio E. Rosenthal B. Rozycki M. van der Giessen J. Genetic evidence of interspecies introgression of mitochondrial genomes between Trichinella spiralis and Trichinella britovi under natural conditions Infect. Genet. Evol. 36 2015 323 332 10.1016/j.meegid.2015.10.005 26458526
Fredericks J. Hill D.E. Zarlenga D.S. Fournet V.M. Hawkins-Cooper D.S. Urban J.F. Jr. Kramer M. Inactivation of encysted muscle larvae of Trichinella spiralis in pigs using Mebendazole Vet. Parasitol. 327 2024 110140 10.1016/j.vetpar.2024.11040 38330532
Gaeta R. Bruschi F. History of the parasite and disease Bruschi F. Trichinella and Trichinellosis 2021 Academic Press London, UK 3 24 10.1016/B978-0-12-821209-7.00016-0
Gamble H.R. Comparison of immune effects in mice immunized with Trichinella spiralis adult and larval antigens J. Parasitol. 71 1985 680 682 4057011
Gamble H.R. Trichinella spiralis: immunization of mice using monoclonal antibody affinity-isolated antigens Exp. Parasitol. 59 1985 398 404 10.1016/0014-4894(85)90095-5 2581801
Gamble H.R. Detection of trichinellosis in pigs by artificial digestion and enzyme immunoassay J. Food Prot. 59 1996 295 298 10.4315/0362-028x-59.3.295 10463449
Gamble H.R. Sensitivity of artificial digestion and enzyme immunoassay methods of inspection for trichinae in pigs J. Food Prot. 61 1998 339 343 10.4315/0362-028x-61.3.339 9708307
Gamble H.R. Factors affecting the efficiency of pooled sample digestion for the recovery of Trichinella spiralis from muscle tissue Int. J. Food Microbiol. 48 1999 73 78 10.1016/s0168-1605(99)00017-3 10375137
Gamble H.R. Preharvest and postharvest control of Trichinella in meat Bruschi F. Trichinella and Trichinellosis 2021 Academic Press London, UK 433 453 10.1016/B978-0-12-821209-7.00016-0
Gamble H.R. Trichinella spp. control in modern pork production systems Food Waterborne Parasitol. 28 2022 10.1016/j.fawpar.2022.e00172 e00172
Gamble H.R. Bush E. Seroprevalence of Trichinella infection in domestic swine based on the National Animal Health Monitoring System's 1990 and 1995 swine surveys Vet. Parasitol. 80 1999 303 310 10.1016/s0304-4017(98)00232-5 9950336
Gamble H.R. Graham C.E. A monoclonal antibody purified antigen for the immunodiagnosis of trichinosis Am. J. Vet. Res. 45 1984 67 74 6703457
Gamble H.R. Murrell K.D. Conservation of diagnostic antigen epitopes among biologically diverse isolates of Trichinella spiralis J. Parasitol. 72 1986 921 925 10.2307/3281845 2434638
Gamble H.R. Murrell K.D. Progress in the development of vaccines against parasitic diseases Immunol. Lett. 16 1987 329 336 0165-2478(87)90166-0 [pii] 10.1016/0165-2478(87)90166-0 3327816
Gamble H.R. Anderson W.R. Graham C.E. Murrell K.D. Diagnosis of swine trichinosis by enzyme-linked immunosorbent assay (ELISA) using an excretory - secretory antigen Vet. Parasitol. 13 1983 349 361 10.1016/0304-4017(83)90051-1 6686388
Gamble H.R. Murrell K.D. Marti H.P. Inoculation of pigs against Trichinella spiralis, using larval excretory-secretory antigens Am. J. Vet. Res. 47 1986 2396 2399 3789502
Gamble H.R. Rapic D. Marinculic A. Murrell K.D. Evaluation of excretory-secretory antigens for the serodiagnosis of swine trichinellosis Vet. Parasitol. 30 1988 131 137 10.1016/0304-4017(88)90160-4 3245106
Gamble H.R. Gajadhar A.A. Solomon M.B. Methods for the detection of trichinellosis in horses J. Food Prot. 59 1996 420 425 10.4315/0362-028X-59.4.420 31158990
Gamble H.R. Solomon M.B. Long J.B. Effects of hydrodynamic pressure on the viability of Tichinella spiralis in pork J. Food Prot. 61 1998 637 639 10.4315/0362-028x-61.5.637 9709242
Gamble H.R. Brady R.C. Bulaga L.L. Berthoud C.L. Smith W.G. Detweiler L.A. Miller L.E. Lautner E.A. Prevalence and risk association for Trichinella infection in domestic pigs in the northeastern United States Vet. Parasitol. 82 1999 59 69 10.1016/s0304-4017(98)00267-2 10223350
Gamble H.R. Bessonov A.S. Cuperlovic K. Gajadhar A.A. van Knapen F. Noeckler K. Schenone H. Zhu X. International commission on trichinellosis: recommendations on methods for the control of Trichinella in domestic and wild animals intended for human consumption Vet. Parasitol. 93 2000 393 408 10.1016/s0304-4017(00)00354-x 11099850
Gamble H.R. Pyburn D. Anderson L.A. Miller L.E. Verification of good production practices that reduce the risk of exposure of pigs to Trichinella Parasite 8 2001 S233 S235 10.1051/parasite/200108s2233 11484365
Gamble H.R. Pozio E. Lichtenfels J.R. Zarlenga D.S. Trichinella pseudospiralis from a wild pig in Texas Vet. Parasitol. 132 2005 147 150 10.1016/j.vetpar.2005.05.044 15990234
Gamble H.R. Hill D.E. Fournet V. Adams B. Hawkins-Cooper D. Fredericks J. Aquino J. Agu S. Chehab N. Ankrah A. Antognoli M.C. Remmenga M.D. Kramer S. Gustafson L. Rosenthal B.M. Surveillance for Trichinella infection in U.S. pigs raised under controlled management documents negligible risk for public health Food Waterborne Parasitology 2024 10.1016/j.fawpar.2024.e00238
Garkavi G.L. The species of Trichinella isolated from wild carnivores Veterinariia 10 1972 90 91 (in Russian) 4662373
Gignilliat J.L. Pigs, politics, and protection: the European boycott of American pork, 1879-1891 Agric. Hist. 35 1961 3 12
Gould S.E. History Gould S.E. Trichinosis in Man and Animals 1970 Charles C Thomas Publisher Springfield, Illinois 3 18
Hall M.C. Report of the Chief of the Bureau of Animal Industry, 1935 1935 United States Department of Agriculture 48 55 (report 23774–35-1)
Hall M.C. Studies on trichinosis. IV. The role of the garbage-fed hog in the production of human trichinosis Public Health Rep. 52 27 1937 873 886 19315615
Hall R.L. Lindsay A. Hammond C. Montgomery S.P. Wilkins P.P. da Silva A.J. McAuliffe I. de Almeida M. Bishop H. Mathison B. Sun B. Largusa R. Jones J.L. Outbreak of human trichinellosis in northern California caused by Trichinella murrelli Am. J. Trop. Med. Hyg. 87 2012 297 302 10.4269/ajtmh.2012.12-0075 22855761
Hanbury R.D. Doby P.B. Miller H.O. Murrell K.D. Trichinellosis in a herd of swine: cannibalism as a major mode of transmission J. Am. Vet. Med. Assoc. 188 1986 1155 1159 3721964
Heaton D. Huang S. Shiau R. Casillas S. Straily A. Kong L.K. Ng V. Petru V. Trichinellosis outbreak linked to consumption of privately raised raw boar meat -- California, 2017 MMWR Morb. Mortal Wkly. Rep. 67 2018 247 249 10.15585/mmwr.mm6708a3 29494570
Hecht L.B.B. Thompson P.C. Rosenthal B.M. Comparative demography elucidates the longevity of parasitic and symbiotic relationships Proc. R. Soc. B 285 2018 20181032 10.1098/rspb.2018.103
Herbst M. Experiments on the transmission of intestinal worms Quart. J. Microscop. Sci. 1 1853 209 211
Hill R.O. Spencer P.L. Doby P.B. Murrell K.D. Illinois swine trichinosis epidemiology project Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984.Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 251 255
Hill D.E. Gamble H.R. Zarlenga D.S. Coss C. Finnigan J. Trichinella nativa in a black bear from Plymouth, New Hampshire Vet. Parasitol. 132 2005 143 146 10.1016/j.vetpar.2005.05.043 15993540
Hill D.E. Forbes L. Gajadhar A.A. Gamble H.R. Viability and infectivity of Trichinella spiralis muscle larvae in frozen horse tissue Vet. Parasitol. 146 2007 102 106 10.1016/j.vetpar.2007.02.001 17418492
Hill D.E. Forbes L. Kramer M. Gajadhar A. Gamble H.R. Larval viability and serological response in horses with long-term Trichinella spiralis infection Vet. Parasitol. 146 2007 107 116 10.1016/j.vetpar.2007.02011 17386976
Hill D.E. Samuel M.D. Nolden C.A. Sundar N. Zarlenga D.S. Dubey J.P. Trichinella murrelli in scavenging mammal species from Wisconsin, USA J. Wildl. Dis. 44 2008 629 635 10.7589/0090-3558-44.3.629 18689648
Hill D.E. Forbes L. Zarlenga D.S. Urban J.F. Gajadhar A.A. Gamble H.R. Survival of North American genotypes of Trichinella in frozen pork J. Food Prot. 72 2009 2565 2570 10.4315/0362-028x-72.12.2565 20003740
Hill D.E. Pierce V. Murrell K.D. Ratliffe N. Rupp B. Fournet V.M. Zarlenga D.S. Rosenthal B.M. Gamble H.R. Kelly K. Dulin M. Cessation of Trichinella spiralis transmission among scavenging mammals after the removal of infected pigs from a poorly managed farm: implications for trichinae transmission in the US Zoonoses Public Health 57 2010 e116 e123 10.1111/j.1863-2378.2009.01296.x 19968844
Hill D.E. Dubey J.P. Baroch J.A. Swafford S.R. Fournet V.F. Hawkins-Cooper D. Pyburn D.G. Schmit B.S. Gamble H.R. Pedersen K. Ferreira L.R. Verma S.K. Ying Y. Kwok O.C.H. Feidas H. Theodoropoulos G. Surveillance of feral swine for Trichinella spp. and Toxoplasma gondii in the USA and host-related factors associated with infection Vet. Parasitol. 205 2014 653 665 10.1016/j.vetpar.2014.07.026 25182211
Hill D.E. Luchansky J. Porto-Fett A. Gamble H.R. Fournet V.M. Hawkins-Cooper D.S. Gajadhar A.A. Holley R. Juneja V.K. Dubey J.P. Curing conditions to inactivate Trichinella spiralis muscle larvae in ready-to-eat pork sausage Food Waterborne Parasitol. 6 2017 1 8 10.1016/j.fawpar.2017.06.001 32095637
Holzbauer S.M. Agger W.A. Hall R.L. Johnson G.M. Schmitt D. Garvey A. Bishop H.S. Rivera H. de Almeida M.E. Hill D. Stromberg B.E. Lynfield R. Smith K.E. Outbreak of Trichinella spiralis infections associated with a wild boar hunted at a game farm in Iowa Clin. Infect. Dis. 59 2014 1750 1756 10.1093/cid/ciu713 25214511
Iacob O. Chiruță C. Mareș M. Trichinella spiralis and T. britovi in North-Eastern Romania: a six-year retrospective multicentric survey Vet. Sci. 9 2022 509 10.3390/vetsci9090509 36136725
Ivanoska D. Cuperlovic K. Gamble H.R. Murrell K.D. Comparative efficacy of antigen and antibody detection tests for human trichinellosis J. Parasitol. 75 1989 38 41 2645393
Jefferies J.C. Beal V. Jr. Murtishaw T.R. Zimmermann W.J. Trichinae in garbage fed swine Proceedings of the 70th Annual Meeting of the United States Livestock Sanitary Association, Buffalo, New York, 1966 1966 349 357
Kapel C.M. Gamble H.R. Infectivity, persistence, and antibody response to domestic and sylvatic Trichinella spp. in experimentally infected pigs Int. J. Parasitol. 30 2000 215 221 10.1016/s0020-7519(99)00202-7 10704604
Kapel C.M.O. Pozio E. Sacchi L. Prestrud P. Freeze tolerance, morphology, and RAPD-PCR identification of Trichinella nativa in naturally infected arctic foxes J. Parasitol. 85 1999 144 147 10207384
Korhonen P.K. Pozio E. La Rosa G. Chang B.C.H. Koehler A.V. Hoberg E.P. Boag P.R. Tan P. Jex A.R. Hofmann A. Sternberg P.W. Young N.D. Gasser R.B. Phylogenomic and biogeographic reconstruction of the Trichinella complex Nat. Commun. 7 2016 10513 10.1038/ncomms10513 26830005
Kotula A.W. Murrell K.D. Acosta-Stein L. Lamb L. Douglass L. Trichinella spiralis: effect of high temperature on infectivity in pork Exp. Parasitol. 56 1983 15 19 10.1016/0014-4894(83)90092-9 6873222
Kotula A.W. Murrell K.D. Acosta-Stein L. Lamb L. Distribution of Trichinella spiralis larvae in selected muscles and organs of experimentally infected swine J. Anim. Sci. 58 1984 94 98 10.2527/jas1984.58194x 6698907
Kotula A.W. Sharar A. Paroczay E. Gamble H.R. Murrell K.D. Douglass L. Infectivity of Trichinella spiralis from frozen pork J. Food Prot. 53 1990 571 573 10.4315/0362-028X-53.7.571 31018353
Kozar Z. Trichinosis in Europe Gould S.E. Trichinosis in Man and Animals 1970 Charles C Thomas Publisher Springfield, Illinois, USA 423 436
Krivokapich S.J. Pozio E. Gatti G.M. Prous C.L.G. Ribicich M. Marucci G. La Rosa G. Confalonieri V. Trichinella patagoniensis n. sp. (Nematoda), a new encapsulated species infecting carnivorous mammals in South America Int. J. Parasitol. 42 2012 903 910 10.1016/j.ijpara.2012.07.009 22921601
La Rosa G. Pozio E. Rossi P. Murrell K.D. Allozyme analysis of Trichinella isolates from various host species and geographical regions J. Parasitol. 78 1992 641 646 1635022
La Rosa G. Marucci G. Rosenthal B.M. Pozio E. Development of a single larva microsatellite analysis to investigate the population structure of Trichinella spiralis Infect. Genet. Evol. 12 2012 369 376 10.1016/meegid.2012.01.008 22281873
La Rosa G. Calero-Bernal R. Pérez-Martín J.E. Tonanzi F. Galati F. Serrano-Aguilera F.J. Rosenthal B.M. Pozio E. Rare but evolutionarily consequential outcrossing in a highly inbred zoonotic parasite Int. J. Parasitol. 48 2018 543 553 10.1016/j.ijpara.2017.12.007 29526813
Leiby D.A. Schad G.A. Duffy C.H. Murrell K.D. Alt G.L. Sylvatic trichinosis in Pennsylvania: Occurrence in nature and observations on strain characterization Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984.Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 280 284
Leiby D.A. Schad G.A. Duffy C.H. Murrell K.D. Trichinella spiralis in an agricultural ecosystem. III. Epidemiological investigations of Trichinella spiralis in resident wild and feral animals J. Wildl. Dis. 24 1988 606 609 10.7589/0090-3558-24.4.606 3193554
Leiby D.A. Dufy C.H. Murrell K.D. Schad G.A. Trichinella spiralis in an agricultural ecosystem: transmission in the rat population J. Parasitol. 76 1990 360 364 10.2307/3282667 2352066
Leidy J. On the existance of an entozoon (Trichina spiralis) in the superficial part of the extensor muscles of thigh of a hog Proc. Acad. Natl. Sci. Phila. 3 1846 107 108
Leuckart R. On the mature condition of Trichina spiralis Quart. J. Microscop. Sci. 8 1860 168 171
Lichtenfels J.R. Murrell K.D. Pilitt P.A. Comparison of three subspecies of Trichinella spiralis by scanning electron microscopy J. Parasitol. 69 1983 1131 1140 6674461
Liciardi M. Marucci G. Addis G. Ludovisi A. Gomez Morales M.A. Deiana B. Cabaj W. Pozio E. Trichinella britovi and Trichinella spiralis mixed infection in a horse from Poland Vet. Parasitol. 161 2009 345 348 10.1016/j.vetpar.2009.01.013 19217211
Lin K.W. Keeton J.T. Craig T.M. Gates C.E. Gamble H.R. Custer C.S. Cross H.R. Physicochemical composition of dry-cured ham processed under minimal aging time/temperature conditions J. Food Sci. 55 1990 285 288 10.1111/j.1365-2621.1990.tb06744.x
Lin K.W. Keeton J.T. Craig T.M. Huey R.H. Longnecker M.T. Gamble H.R. Custer C.S. Cross H.R. Bioassay analysis of dry-cured ham processed to affect Trichinella spiralis J. Food Sci. 55 1990 289 292 10.1111/j.1365-2621.1990.tb06745.x
Lindsay D.S. Zarlenga D.S. Gamble H.R. Al-Yaman F. Smith P.C. Blagburn B.L. Isolation and characterization of Trichinella pseudospiralis Garkavi, 1972 from a black vulture (Coragyps atratus) J. Parasitol. 81 1995 920 923 10.2307/3284041 8544065
Lunney J.K. Murrell K.D. Immunogenetic analysis of Trichinella spiralis infections in swine Vet. Parasitol. 29 1988 179 193 10.1016/0304-4017(88)90125-2 2974214
Madden K.B. Murrell K.D. Lunney J.K. Trichinella spiralis: major histocompatibility complex-associated elimination of encysted muscle larvae in swine Exp. Parasitol. 70 1990 443 451 10.1016/0014-4894(90)90129-z 2323396
Madden K.B. Moeller R.F. Jr. Douglass L.W. Goldman T. Lunney J.K. Trichinella spiralis: genetic basis and kinetics of the anti-encysted muscle larval response in miniature swine Exp. Parasitol. 77 1993 23 35 10.1006/expr.1993.1057 8344404
Mantovani A. Filippini I. Bergomi S. Indagini su un'epidemia de trichinellosi umana verificatasi in Italia Parassitologia 22 1980 107 134 7031569
Marti H. Murrell K.D. Validity of tongue muscle digestions for prevalence surveys on rat trichinellosis Proc. Helminthol. Soc. Wash. 53 1986 288 289
Marti H.P. Murrell K.D. Trichinella spiralis: Antifecundity and antinewborn larvae immunity in swine Exp. Parasitol. 62 1986 370 375 10.1016/0014-4894(86)90044-5 3780929
Marti H.P. Murrell K.D. Colostral transfer of antibody to Trichinella spiralis Tanner C.E. Martinez-Fernandez A.R. Bolas-Fernandez F. Proceedings of the Seventh International Conference on Trichinellosis, October 2–6, 1988, Alicante, Spain 1989 Consejo Superior de Invesdtigaciones Cientificas Press Madrid, Spain 124 129
Marti H.P. Murrell K.D. Gamble H.R. Trichinella spiralis: immunization of pigs with newborn larval antigens Exp. Parasitol. 63 1987 68 73 10.1016/0014-4894(87)90079-8 3803533
Marucci G. Tonanzi D. Interisano M. Vatta P. Galati F. La Rosa G. The international Trichinella reference Centre database. Report on thirty-three years of activity and future perspectives Food Waterborne Parasitol. 27 2022 10.1016/j.fawpar.2022.e00156 e00156
Mitreva M. Jasmer D.P. Zarlenga D.S. Wang Z. Abubucker S. Martin J. Taylor C.M. Yin Y. Fulton L. Minx P. Yang S.P. Warren W.C. Fulton R.S. Bhonagiri V. Zhang X. Hallsworth-Pepin K. Clifton S.W. McCarter J.P. Appleton J. Mardis E.R. Wilson R.K. The draft genome of the parasitic nematode Trichinella spiralis Nat. Genet. 43 2011 228 235 10.1038/ng769 21336279
Murrell K.D. Preslaughter control of trichinosis Food Technol. 37 1983 87 90
Murrell K.D. Trichinella spiralis: acquired immunity in swine Exp. Parasitol. 59 1985 347 354 10.1016/0014-4894(85)90090-6 3996525
Murrell K.D. Strategies for the control of human trichinosis transmitted by pork Food Technol. 39 1985 65-68-110-111
Murrell K.D. Prospects for vaccination Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984.Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 201 210
Murrell K.D. Despommier D.D. Immunization of swine against Trichinella spiralis Vet. Parasitol. 15 1984 263 270 10.1016/0304-4017(84)90078-5 6541840
Murrell K.D. Pozio E. Worldwide occurrence and impact of human trichinellosis, 1986-2009 Emerg. Infect. Dis. 17 2011 2194 2202 10.3201/eid1712.110896 22172230
Murrell K.D. Gamble H.R. Schad G.A. Experimental transmission of Trichinella spiralis to swine by infected rats Proc. Helminthol. Soc. Wash. 51 1984 66 68
Murrell K.D. Lieby D.A. Duffy C. Schad G.A. Susceptibility of domestic swine to wild animal isolates of Trichinella spiralis Kim C.W. Proceedings of the Sixth International Conference on Trichinellosis, July 8-12, 1984.Far Hills Inn, Val Morin, Quebec, Canada 1985 The State University of New York Albany, New York 301 305
Murrell K.D. Anderson W.R. Schad G.A. Hanbury R.D. Kazacos K.R. Gamble H.R. Brown J. Field evaluation of the enzyme-linked immunosorbent assay for swine trichinosis: efficacy of the excretory-secretory antigen Am. J. Vet. Res. 47 1986 1046 1049 3717724
Murrell K.D. Stringfellow F. Dame J.B. Leiby D.A. Duffy C. Schad G.A. Trichinella spiralis in an agricultural ecosystem. II. Evidence for natural transmisison of Trichinella spralis spiralis from domestic swine to wildlife J. Parasitol. 73 1987 103 109 3572642
Murrell K.D. Lichtenfels R.J. Zarlenga D.S. Pozio E. The systematics of the genus Trichinella with a key to species Vet. Parasitol. 93 2000 293 307 10.1016/s0304-4017(00)00347-2 11099843
Murrell K.D. Djordjevic M. Cuperlovic K. Sofronic Lj Savic M. Djordjevic M. Damjanovic S. Epidemiology of Trichinella infection in the horse: the risk from animal product feeding practices Vet. Parasitol. 123 2004 223 233 10.1016/j.vetpar.2004.06.008 15325048
Murrell K.D. Djordjevic M. Cuperlovic K. Sofronic Lj Savic M. Djordjevic M. Damjanovic S. Epidemiology of Trichinella infection in the horse: the risk from animal product feeding practices Vet. Parasitol. 123 2004 223 233 10.1016/j.vetpar.2004.06.008 15325048
Nagano I. Wu Z. Matsuo A. Pozio E. Takahashi Y. Identification of Trichinella isolates by polymerase chain reaction-restriction fragment length polymorphism of the mitochondrial cytochrome c-oxidase subunit I gene Int. J. Parasitology. 29 1999 1113 1120
Nutter F.B. Levine J.F. Stoskopf M.K. Gamble H.R. Dubey J.P. Seroprevalence of Toxoplasma gondii and Trichinella spiralis in North Carolina black bears (Ursus americanus) J. Parasitol. 84 1998 1048 1050 9794654
Oliver D.G. Singh P. Allison D.E. Murrell K.D. Gamble H.R. Field evaluation of an enzyme immunoassay for detection of trichinellosis in hogs in a high volume North Carolina abattoir Tanner C.E. Martinez-Fernandez A.R. Bolas-Fernandez F. Proceedings of the Seventh International Conference on Trichinellosis, October 2–6, 1988, Alicante, Spain 1989 Consejo Superior de Investigaciones Cientificas Press Madrid, Spain 439 444
Owen R. Description of a microscopic entozoon infesting the muscles of the human body Trans. Zool. Soc. Lond. 1 1835 315 323
Porto-Fett A.C.S. Call J.E. Shoyer B.E. Hill D.E. Pshebniski C. Cocoma G.J. Luchansky J.E. Evaluation of fermentation, drying, and/or high pressure processing on viability of listeria monocytogenes, Escherichia coli O157:H7, Salmonella spp., and Trichinella spiralis in raw pork and Genoa salami Int. J. Food Microbiol. 140 2010 61 75 20207436
Pozio E. Adaptation of Trichinella spp. for survival in cold climates Food Waterborne Parasitol. 4 2016 4 12 10.1016/j.fawpar.2016.07.001
Pozio E. How globalization and climate change could affect foodborne parasites Exp. Parasitol. 208 2020 107807 10.1016/j.exppara.2019.107807 31751558
Pozio E. The impact of globalization and climate change on Trichinella spp. epidemiology Food Waterborne Parasitol. 27 2022 10.1016/j.fawpar.2022.e00154 e00154
Pozio E. La Rosa G. Trichinella murrelli n. sp: etiological agent of sylvatic trichinellosis in temperate areas of North America J. Parasitol. 86 2000 134 139 10.1645/0022-3395(2000)086[0134:TMNSEA]2.0.CO;2 10701576
Pozio E. Murrell K.D. Systematics and epidemiology of Trichinella Adv. Parasitol. 63 2006 367 439 10.1016/S0065-308X(06)63005-4 17134656
Pozio E. Zarlenga D.S. Recent advances on the taxonomy, systematics and epidemiology of Trichinella Int. J. Parasitol. 35 2005 1191 1204 10.1016/j.ijpara.2005.07.012 16153648
Pozio E. Zarlenga D.S. Taxonomy of the Trichinella genus Bruschi F. Trichinella and Trichinellosis 2021 Academic Press London, UK 35 76 10.1016/B978-0-12-821209-7.00006-8
Pozio E. La Rosa G. Rossi P. Murrell K.D. Biological characterization of Trichinella isolates from various host species and geographical regions J. Parasitol. 78 1992 647 653 1635023
Pozio E. La Rosa G. Murrell K.D. Lichtenfels J.R. Taxonomic revision of the genus Trichinella J. Parasitol. 78 1992 654 659 1635024
Pozio E. Owen I.L. La Rosa G. Sacchi L. Rossi P. Corona S. Trichinella papuae n.sp. (Nematoda), a new non-encapulated species from domestic and sylvatic swine of Papua New Guinea Int. J. Parasitol. 29 1999 1825 1839 10.1016/s0020-7519(99)00135-6 10616929
Pozio E. Foggin C.M. Marucci G. La Rosa G. Sacchi L. Corona S. Rossi P. Mukaratirwa S. Trichinella zimbabwensis n.sp. (Nematoda), a new non-encapsulated species from crocodiles (Crocodulus niloticus) in Zimbabwe also infecting mammals Int. J. Parasitol. 32 2002 1787 1799 10.1016/s0020-7519(02)00139-x 12464425
Pozio E. Hoberg E. La Rosa G. Zarlenga D.S. Molecular taxonomy, phylogeny and biogeography of nematodes belonging to the Trichinella genus Infect. Genet. Evol. 9 2009 606 616 10.1016/j.meegid.2009.03.003 19460327
Pyburn D.G. Gamble H.R. Wagstrom E.A. Anderson L.A. Miller L.E. Trichinae certification in the United States pork industry Vet. Parasitol. 132 2005 179 183 10.1016/j.vetpar.2005.05.051 15993000
Railliet A. Traité de zoologi médicale et agricole 1895 Asselin et Houzeau Paris
Railliet A. Quelques rectifications à la nomenclature des parasites Rec. Méd. Vét. 1896 157 161
Ransom B.H. The effect of cold upon the larvae of Trichinella spiralis Sci. New Ser. 39 1914 181 183
Ransom B.H. Trichinosis Report of the Eighteenth Annual Meeting of the United States Livestock Sanitary Association, Chicago, Illinois, February 16-18 1915 147 165
Ransom B.H. Effects of refrigeration upon the larvae of Trichinella spiralis J. Agric. Res. 5 1916 819 838
Ransom B.H. Schwartz B. Effects of heat on trichinae J. Agric. Res. 17 1919 201 221
Ransom B.H. Schwartz B. Raffensperger H.B. Effects of pork-curing processes on Trichinae. United States Department of Agriculture Bulletin No. 880 1920 1 37
Rausch R.L. Trinchinosis in the Arctic Gould S.E. Trichinosis in Man and Animals 1970 Charles C Thomas Publisher Springfield, Illinois 348 373
Reinhard E.G. Landmarks of parasitology. II. Demonstration of the life cycle and pathogenicity of the spiral threadworm Exp. Parasitol. 7 1958 108 123 13501239
Rosenthal B.M. LaRosa G. Zarlenga D. Dunams D. Yao C. Liu M. Pozio E. Human dispersal of Trichinella spiralis in domesticated pigs Infect. Genet. Evol. 8 2008 799 805 10.1016/j.meegid.2008.07.008 18718558
Rosenthal B.M. Bilska-Zajac E. Thompson P.C. The genetics of Trichinella populations: A study in contrasts Bruschi F. Trichinella and Trichinellosis 2021 Academic Press 25 34 10.1016/B978-0-12-821209-7.00002-0
Roy S.L. Lopez A.S. Schantz P.M. Trichinellosis surveillance --- United States, 1997–2001 Morb. Mortal. Wkly Rep. 52 SS06 2003 1 8 https://www.cdc.gov/mmwr/preview/mmwrhtml/ss5206a1.htm
Ruitenberg E.J. Steerenberg P.A. Brosi J.M. Buys J. Serodiagnosis of Trichinella spiralis infections in pigs by enzyme-linked immunosorbent assays Bull. Wld. Hlth. Org. 1974 1974 108 109
Scandrett B. Konecsni K. Lalonde L. Boireau P. Vallée I. Detection of natural Trichinella murrelli and Trichinella spiralis infections in horses by routine post-slaughter food safety testing Food Waterborne Parasitol. 11 2018 1 5 10.1016/j.fawpar.2018.06.001 32095599
Schad G.A. Kelly M. Leiby D.A. Blumrick K. Duffy C. Swine trichinosis in mid-Atlantic slaughterhouses: possible relationship to hog marketing systems Prev. Vet. Med. 3 1985 391 399 10.1016/0167-5877(85)90015-7
Schad G.A. Leiby D.A. Duffy C.H. Murrell K.D. Swine trichinosis in New England slaughterhouses Am. J. Vet. Res. 46 1985 2008 2010 4051306
Schad G.A. Leiby D.A. Duffy C.H. Murrell K.D. Alt G.L. Trichinella spiralis in the black bear (Ursus americanus) of Pennsylvania: distribution, prevalence and intensity of infection J. Wildl. Dis. 22 1986 36 41 10.7589/0090-3558-22.1.36 3951059
Schad G.A. Duffy C.H. Leiby D.A. Murrell K.D. Zirkle E.W. Trichinella spiralis in an agricultural ecosystem: transmission under natural and experimentally modified on-farm conditions J. Parasitol. 73 1987 95 102 10.2307/3282351 3572672
Schwartz B. Effects of X-rays on trichinae J. Agric. Res. 20 1921 845 854
Schwartz B. Trichinosis - A disease caused by eating raw pork U.S. Department of Agriculture Leaflet No.34 1929 1 8
Schwartz B. Report of the chief of the Bureau of Animal Industry, 1936 United States Department of Agriculture Report No. 95572 1936 53 60
Schwartz B. Trichinosis in swine and its relationship to public health J. Am. Vet. Med. Assoc. 45 1938 317 337
Schwartz B. Freedom from viable trichinae of frakfurters prepared under federal meat inspection Proc. Helminthol. Soc. Wash. 6 1939 35 37
Schwartz B. Trichinosis in swine and its relationship to public health Annu. Rep. Board Regents Smithson. Inst. 1939 1940 413 435
Schwartz B. Trichinosis in swine Proceedings of the First National Conference on trichinosis, Chicago, Illinois, December 15, 1952 1952 26 30
Schwartz B. Trichinellosis in the United States Kozar Z. Proceedlings of the 1st International Conference on Trichinellosis, Warsaw. 1962 1960 Polish Scientific Publishers Warsaw 68 73
Schwartz B. McIntosh A. Mitchell W.C. Non-specific skin reactions in pigs to the injection of Trichina extract J. Parasitol. 17 suppl 1930 114
Sharma R. Thompson P.C. Hoberg E.P. Scandrett W.B. Konecsni K. Harms N.J. Kukka P.M. Jung T.S. Elkin B. Mulders R. Larter N.C. Branigan M. Pongracz J. Wagner B. Kafle P. Lobanov V.A. Rosenthal B.M. Jenkins E.J. Hiding in plain sight: discovery and phylogeography of a cryptic species of Trichinella (Nematoda: Trichinellidae) in wolverine (Gulo gulo) Int. J. Parasitol. 50 2020 277 287 10.1016/j.ijpara.2020.01.003 32171846
Smith P. Eidson M. Willsey A. Wallace B. Kacica M. Johnson G. Frary-Pelletieri M. Burns A. Stone W. Narro J. Faulkner C. Rotstein D. Sheeler L. Erwin P. Kirkpatrick B. Zarlenga D.S. Trichinellosis associated with bear meat --- New York and Tennessee, 2003 Morb. Mortal. Wkly Rep. 53 27 2004 606 610 https://www.cdc.gov/mmwr/preview/mmwrhtml/mm5327a2.htm
Snyder D.E. Zarlenga D.S. La Rosa G. Pozio E. Biochemical, biological, and genetic characterization of a sylvatic isolate of Trichinella J. Parasitol. 79 1993 347 352 8501590
Soule C. Dupouy-Camet J. Georges P. Ancelle T. Gillet J.P. Vaissaire J. Delvigne A. Plateau E. Experimental trichinellosis in horses: biological and parasitological evaluation Vet. Parasitol. 31 1989 19 36 10.1016/0304-4017(89)90005-8 2658299
Springer Y.P. Casillas S. Helfrich K. Mocan D. Smith M. Arriaga G. Mixson L. Castrodale L. McLaughlin J. Two outbreaks of trichinellosis linked to consumption of walrus meat -- Alaska, 2016–2017 MMWR Morb. Mortal Wkly. Rep. 66 2017 692 696 10.15585/mmwr.mm6626a3 28683055
Stiles C.W. A statistical review of trichinosis in Germany during eighteen years 1881-1898 Bureau of Animal Industries, US Department of Agriculture Bulletin no. 30 1901 35 155
Ströbel H. Die Serodiagnostik der Trichinosis Muenchener Medizinische Wochenschrift 58 1911 672 673
Thompson P.C. Zarlenga D.S. Liu M.Y. Rosenthal B.M. Long-read sequencing improves assembly of Trichinella genomes 10-fold, revealing substrantial synteny between lineages diverged over 7 million years Parasitology 144 2017 1302 1315 10.1017/S0031182017000348 28583210
Thompson P.C. Bilska-Zajac E. Zarlenga D.S. Liu M. Cencek T. Rózycki M. Rosenthal B.M. Divergence at mitochondrial and ribosomal loci indicates the split between Asian and European populations of Trichinella spiralis occurred prior to swine domestication Infect. Genet. Evol. 88 2021 104705 10.1016/j.meegid.2021.104705
Thompson P.C. de Araujo L.S. Gupta A. Kay S. Kwok O.C.H. Battle J. Van Why K. Brown J.D. Rosenthal B.M. Dubey J.P. Trichinella murrelli Pozio and la Rosa, 2000 in a gray fox (Urocyon cinereoargenteus) from Pennsylvaia: a new host record for the zoonotic nematode J. Parasitol. 2024 In press
Thornbury F.J. The pathology of trichinosis Univ. Med. Mag vol. 10 1897 University of Pennsylvania Press Philadelphia, Pennsylvania 64 79
Urban J.F. Jr. Schopf L. Morris S.C. Orekhova T. Madden K.B. Betts C.J. Gamble H.R. Byrd C. Donaldson D. Else K. Finkelman F.D. Stat6 signaling promotes protective immunity against Trichinella spiralis through a mast cell- and T cell-dependent mechanism J. Immunol. 164 2000 2046 2052 10.4049/jimmunol.164.4.2046 10657657
USDA FSIS compliance guideline for the prevention and control of Trichinella and other parasitic hazards in pork products 2018 USDA https://www.fsis.usda.gov/wps/wcm/connect/2ca75475-3efd-4fa7-8f34-7393c245a1df/Trichenella-Compliance-Guide-03162016.pdf?MOD=AJPERES
USDA Animal and Plant Health Inspection Service Seroprevalence of Trichinella and Toxoplasma in U. S. grower/Finisher pigs, 2006. APHIS Info Sheet http://www.aphis.usda.gov/animal_health/nahms/swine/downloads/swine2006_is_trucg_1.pdf 2011
USDA Animal and Plant Health Inspection Service Trichinella antibody seroprevalence in U.S. swine, 1990-2012. APHIS Info Sheet https://www.aphis.usda.gov/animal_health/nahms/swine/downloads/swine2012/Swine2012_is_Trich_1.pdf 2018
van Knapen F. Framstad K. Ruitenberg E.J. Reliability of ELISA (enzyme-linked immunosorbent assay) as control method for the detection of Trichinella spiralis infections in naturally infected slaughter pigs J. Parasitol. 62 1976 332 333 1263051
Virchow M.R. Researches sur le development du Trichina spiralis Comptes Rendus des Séances de l'Académie des Sciences 49 1859 660 662
Ward H.B. The founder of American parasitology, Joseph Leidy J. Parasitol. 10 1923 1 21
Webb K.M. Rosenthal B.M. Deep resequencing of Trichinella spiralis reveals previously un-described single nucleotide polymorphisms and intra-isolate variation within the mitochondrial genome Infect. Genet. Evol. 10 2010 304 310 10.1016/j.meegid.2010.01.003 20083232
Webb K.M. Rosenthal B.M. Next-generation sequencing of the Trichinella murrelli mitochondrial genome allows comprehensive comparison of its divergence from the principal agent of human trichinellosis, Trichinella spiralis Infect. Genet. Evol. 11 2011 116 123 10.1016/j.meegid.2010.10.001 Epub 2010 Oct 12. PMID: 20946970 20946970
Whiting T.L. The United States’ prohibition of horsemeat for human consumption. Is this good law Canad. Vet. J. 48 2007 1173 1180 18050800
Wilson N.O. Hall R.L. Montgomery S.P. Jones J.L. Trichinellosis surveillance --- United States, 2008–2012 Morb. Mortal. Wkly Rep. 64 SS01 2015 1 8 https://www.cdc.gov/mmwr/preview/mmwrhtml/ss6401.htm
Worley D.E. Zarlenga D.S. Seesee F.M. Freezing resistance of a Trichinella spiralis nativa isolate from a gray wolf, Canis lupus, in Montana, with observations on genetic and biological characteristics of the biotype J. Helminthol. Soc. Wash. 57 1990 57 60
Worley D.E. Seesee F.M. Zarlenga D.S. Murrell K.D. Attempts to eradicate trichinellosis from a wild boar population in a private game park (U.S.A.) Campbell W.C. Pozio E. Bruschi F. Proceedings of the Eighth International Conference on Trichinellosis, September 7–10, 1993 1993 Instituto Superiore di Sanità Press Rome, Italy 611 616
Zarlenga D.S. Dame J.B. The identification and characterization of a break within the large subunit ribosomal RNA of Trichinella spiralis: comparison of gap sequences within the genus Mol. Biochem. Parasitol. 51 1992 281 289 10.1016/0166-6851(92)90078-x 1574086
Zarlenga D.S. Gamble H.R. Molecular cloning and expression of an immunodominant 53-kDa excretory-secretory antigen from Trichinella spiralis muscle larvae Mol. Biochem. Parasitol. 42 1990 165 174 10.1016/0166-6851(95)00071-8 2270099
Zarlenga D.S. La Rosa G. Molecular and biochemical methods for parasite differentiation within the genus Trichinella Vet. Parasitol. 93 2000 279 292 10.1016/s0304-4017(00)00346-0 11099842
Zarlenga D.S. Al-Yaman F. Minchella D.J. La Rosa G. A repetitive DNA probe specific for a North American sylvatic genotype of Trichinella Mol. Biochem. Parasitol. 48 1991 131 137 10.1016/0166-6851(91)90109-j 1762626
Zarlenga D.S. Aschenbrenner R.A. Lichtenfels J.R. Variations in microsatellite sequences provide evidence for population differences and multiple ribosomal gene repeats within Trichinella pseudospiralis J. Parasitol. 82 1996 534 538 10.2307/3283777 8691360
Zarlenga D.S. Chute M.B. Martin A. Kapel C.M. A multiplex PCR for unequivocal differentiation of all encapsulated and non-encapsulated genotypes of Trichinella Int. J. Parasitol. 29 1999 1859 1867 10.1016/s0020-7519(99)00107-1 10616932
Zarlenga D.S. Chute M.B. Martin A. Kapel C.M. A single, multiplex PCR for differentiating all species of Trichinella Parasite 8 2001 S24 S26 10.1051/parasite/200108s2024 [doi] 11484367
Zarlenga D. Boyd P. Lichtenfels J.R. Hill D. Gamble H.R. Identification and characaterisation of a cDNA sequence encoding a glutamic acid-rich protein specifically transcribed in Trichinella spiralis newborn larvae and recognized by infected swine serum Int. J. Parasitol. 32 2002 1361 1370 10.1016/s0020-7519(02)00127-3 12350371
Zarlenga D.S. Rosenthal B.M. La Rosa G. Pozio E. Hoberg E.P. Post-miocene expansion, colonization, and host switching drove speciation among extant nematodes of the archaic genus Trichinella Proc. Natl. Acad. Sci. USA 103 2006 7354 7359 10.1073/pnas.0602466103 16651518
Zarlenga D.S. Mitreva M. Thompson P. Tyagi R. Tuo W. Hoberg E.P. A tale of three kingdoms: members of the Phylum Nematoda independently acquired the detoxifying enzyme cyanase through horizontal gene transfer from plants and bacteria Parasitology 146 2019 445 452 10.1017/S0031182018001701 30301483
Zarlenga D. Thompson P. Pozio E. Trichinella species and genotypes Res. Vet. Sci. 133 2020 289 296 10.1016/j.rvsc.2020.08.012 33199264
Zarlenga D. Thompson P. Mitreva M. Rosa B.A. Hoberg E. Horizontal gene transfer provides insights into the deep evolutionary history and biology of Trichinella Food Waterborne Parasitol. 27 2022 e00235
Zarnke R.L. Gamble R. Heckert R.A. Ver Hoef J. Serologic survey for Trichinella spp. in grizzly bears from Alaska J. Wildl. Dis. 33 1997 474 479 9249692
Zenker F.A. Ueber die Trichinen-Krankheit des Menschen Virchow Arch. Pathol. 18 1860 561 572
Zimmermann W.J. A pooled sample method for post-slaughter detection of trichiniasis in swine Proceedings, Seventy-first Annual Meeting of the United States Livestock Sanitary Association, Westward-HO Hotel, Phoenix, Arizona, October 16-20 1967 358 366
Zimmermann W.J. Trichinosis in the United States Gould S.E. Trichinosis in Man and Animals Charles C 1970 Thomas Publisher Springfield, Illinois 378 400
Zimmermann W.J. Control II. Surveillance in swine and other animals buy muscle examination Campbell W.C. Trichinella and Trichinosis 1983 Plenum Press New York and London 515 528
Zimmermann W.J. Brandly P.J. The current status of trichiniasis in U. S. swine Public Health Rep. 80 1965 1061 1066 4954377
Zimmermann W.J. Zinter D.E. The prevalance of trichiniasis in swine in the United States, 1966-70 HSMHA Health Rep. 86 1971 937 945 5167374
Zimmermann W.J. Steele J.H. Kagan I.G. Trichiniasis in the U.S. population, 1966-70: prevalence epidemiologic factors Health Serv. Rep. 88 1973 606 623 4795729
