
==== Front
J Surg Case Rep
J Surg Case Rep
jscr
Journal of Surgical Case Reports
2042-8812
Oxford University Press

10.1093/jscr/rjae180
rjae180
Case Series
AcademicSubjects/MED00910
jscrep/0180
Pirogoff amputation is a viable option to maintain ambulation in chronic limb-threatening ischemia with extensive midfoot tissue loss: a report of two cases
https://orcid.org/0000-0002-0704-7042
Sano Masaya Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Morii Hokuto Department of Emergency and Critical Care Medicine, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Endo Takashi Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

https://orcid.org/0000-0003-3486-2058
Kimura Masaru Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Yamamoto Satoshi Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Hashimoto Takuya Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Deguchi Juno Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan

Corresponding author. Department of Vascular Surgery, Saitama Medical Center, Saitama Medical University, 1981 Kamoda, Kawagoe, Saitama 350-0844, Japan. E-mail: takuya@saitama-med.ac.jp
3 2024
21 3 2024
21 3 2024
2024 3 rjae18028 1 2024
1 3 2024
Published by Oxford University Press and JSCR Publishing Ltd. © The Author(s) 2024.
2024
https://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.

Abstract

Eliminating necrotic and infected tissues is crucial for limb salvage in patients with chronic limb-threatening ischemia (CLTI). However, extensive lesions that involve the midfoot frequently result in transtibial amputation, restricting ambulation and independent life. The Modified Pirogoff amputation, which includes a 90° rotation of the calcaneus and fixation with the tibia, has good functional outcomes in trauma cases. Here, we report two patients with CLTI successfully managed by a combination of revascularization and modified Pirogoff amputation, resulting in preserved ambulation without a prosthesis. Modified Pirogoff amputation may be a good alternative in revascularized CLTI with extensive tissue loss of the midfoot.

Pirogoff amputation
CLTI
diabetic foot
==== Body
pmcIntroduction

Chronic limb-threatening ischemia (CLTI), which represents the most severe form of peripheral artery disease, is associated with high rates of limb loss [1]. Infection and ischemia are crucial factors contributing to subsequent above-ankle amputation for CLTI. Therefore, in addition to restoration of blood flow, aggressive removal of necrotic or infected tissues is required to achieve limb salvage in patients with extensive foot lesions.

On the other hand, functional efficacy of amputations proximal to the midfoot, i.e. Lisfranc and Chopart amputation, remain controversial [2], due to deformities and recurrent ulcers [3, 4]. Moreover, Syme ankle disarticulation has not been well accepted, mainly because of gait disturbance by heel pad migration and difficulty in walking due to discrepancies in limb length [5]. Therefore, most surgeons believe that hindfoot amputations are rarely indicated, resulting in a choice of below-the-knee transtibial amputation in patients with extensive foot lesions due to CLTI. However, after this major amputation, only 40% of patients maintain ambulation with the aid of a prostheses [6].

To minimize leg length discrepancy after amputation, in 1854, Nikolai Pirogoff first described a unique hindfoot amputation technique with 90° rotation of the calcaneus [7]. With modification of the bone fixation method [8], this technique has shown good functional outcomes with minimal leg length discrepancy for patients with trauma. However, there have been few reports of this method’s efficacy in patients with leg ischemia [9–12].

Here, we present two CLTI cases with extensive diabetic foot gangrene, who maintained ambulation by a combination of targeted revascularization to the posterior tibial artery and modified Pirogoff amputation.

Case presentation

Case 1

A 60-year-old man with diabetes mellitus and end-stage renal failure following 10-year maintenance hemodialysis was hospitalized for infected gangrene of the second digit. He had a history of percutaneous coronary intervention for ischemic heart disease. According to preoperative evaluation, his WIfI stage was 4 (wound grade 2, ischemia grade 3, foot infection grade 2), and the GLASS stage was II (target artery path: posterior tibial artery, femoropopliteal grade 2, infrapopliteal grade 2) (Fig. 1a and b) as assessed using the Global Vascular Guidelines [1]. Revascularization (superficial femoral artery-posterior tibial artery bypass with great saphenous vein) and open amputation of the second digit were performed (Fig. 1c).

Figure 1 The preoperative clinical picture of case 1; (a) gangrene of the second digit with infection; (b) preoperative angiography; the GLASS stage was II (TAP: posterior tibial artery, FP2, IP2); (c) postoperative computed tomography; superficial femoral artery-posterior tibial artery bypass with a great saphenous vein was performed.

After surgery, remnant infection became exacerbated and spread to the third and fourth digits, and the planter midfoot (Fig. 2a). Additional amputation and drainage were performed to control the infection, resulting in transection at the Chopart joint (Fig. 2b). Then, the modified Pirogoff technique was applied to achieve wound healing. After starting weight-free walking 1 month after surgery, it took 4 months for the wound to heal and 8 months for bone union (Fig. 2c and d). Ten months later, the patient could walk to the hospital with a cane and did not need a prosthesis at home.

Figure 2 The postoperative clinical picture of case 1; (a) the infection spread to the third, fourth digits, and planter side; (b) the clinical picture of after transection at the Chopart joint; (c) the clinical picture after Pirogoff amputation; (d) lateral radiography after Pirogoff amputation.

Case 2

A 70-year-old man on maintenance hemodialysis due to diabetes mellitus was hospitalized for infected gangrene of the second digit 3 months after vein graft occlusion of the below-knee popliteal artery to posterior tibial artery bypass. The patient had a history of coronary artery bypass grafting for ischemic heart disease. Open amputation was done immediately after admission, but the infection could not be controlled, and multiple additional debridements were required. Finally, there was a large tissue loss on the planter side with partial forefoot amputation, leaving only the fourth and fifth digits.

Although angiography at admission revealed diffuse stenosis in the posterior tibial artery, run-off below the ankle arteries was maintained (GLASS stage II; target artery path: posterior tibial artery, femoropopliteal grade 0, infrapopliteal grade 3). After establishing an in-line flow to the ankle by balloon angioplasty in the posterior tibial artery, modified Pirogoff amputation was performed. Although one reintervention to the posterior tibial artery was required to facilitate wound healing, this patient also acquired short ambulation without a prosthesis at home.

Discussion

Two CLTI cases with extended midfoot tissue loss were successfully managed by revascularization and by modified Pirogoff amputation. As a result of debridement to control infection, tissue loss became so significant that below-knee amputation was considered. After establishing in-line flow to the intact heel pads, modified Pirogoff amputation was performed. Both patients maintained short ambulation indoors without a prosthesis.

While there are other alternatives to hindfoot amputation, the advantage to Pirogoff amputation is that it provides an entire weight-bearing surface with minimal leg discrepancy compared with Syme amputation, thereby allowing short ambulation. In addition, tibio-calcaneal arthrodesis is performed in modified Pirogoff amputation, so there is no positional change of the heel pad due to shortening of the Achilles tendon, which leads to pressure ulcers as seen in other partial foot amputations (Lisfranc or Chopart) [13]. Even though peripheral neuropathy is a serious risk for pressure ulcers, in theory, Andronic et al. [9] reported that the risk of pressure ulcers in Pirogoff amputation did not increase even if patients had peripheral neuropathy.

Though modified Pirogoff amputation has been reported to achieve favorable long-term functional outcomes with trauma patients, there have been few reports involving CLTI patients [9, 10]. This is because attaining primary healing after amputation at any level is challenging in ischemic limbs [1], and we believe that good run-off of the posterior tibial artery is essential for Pirogoff amputation. Moreover, few CLTI patients are ambulatory and able to maintain activities of daily living (ADL) in the first place. Although both cases met the criteria for Pirogoff amputation, it still took a long time for the wound to heal and to achieve bone union [9]. In one of our cases, after removal of the fixation nail, the wound became ulcerated, and it took 14 months to heal after amputation. However, the two cases have attained short ambulation indoors without prostheses for 16 and 13 months.

In both cases, the patients were relatively young and preserved preoperative ADL, and the diabetic gangrene factor was more significant than the ischemic factor. Their revascularized targets were the posterior tibial artery, and the heel pads were intact. Pirogoff amputation may be a viable option in CLTI patients with extensive midfoot tissue loss, provided that inline blood flow to the intact heel pad is achievable.

Author contributions

Design, MS, HM, TH, JD; Data collection and analysis, MS, HM, TE, MS, SY, TH, JD; Writing the manuscript, MS, TH, JD.

Conflict of interest statement

There is no conflict of interest to declare.

Funding

None declared.
==== Refs
Reference

1. Conte MS , BradburyAW, KolhP, et al. Global vascular guidelines on the management of chronic limb-threatening ischemia. J Vasc Surg 2019;69 :3S–125S.e40. 10.1016/j.jvs.2019.02.016.31159978
2. Quigley M , DillonMP. Quality of life in persons with partial foot or transtibial amputation: a systematic review. Prosthet Orthot Int 2016;40 :18–30. 10.1177/0309364614546526.25185154
3. van der Wal GE , DijkstraPU, GeertzenJHB. Lisfranc and Chopart amputation: a systematic review. Medicine (Baltimore) 2023;102 :e33188. 10.1097/MD.0000000000033188.36897730
4. Brodell JDJ , AyersBC, BaumhauerJF, et al. Chopart amputation: questioning the clinical efficacy of a long-standing surgical option for diabetic foot infection. J Am Acad Orthop Surg 2020;28 :684–91. 10.5435/JAAOS-D-19-00757.32769724
5. Smith DG , SangeorzanBJ, HansenSTJ, et al. Achilles tendon tenodesis to prevent heel pad migration in the Syme’s amputation. Foot Ankle Int 1994;15 :14–7. 10.1177/107110079401500104.7981790
6. Taylor SM , KalbaughCA, CassAL, et al. “Successful outcome” after below-knee amputation: an objective definition and influence of clinical variables. Am Surg 2008;74 :607–13. 10.1177/000313480807400707.18646478
7. Pirogoff NI . Resection of bones and joints and amputations and disarticulations of joints. 1864. Clin Orthop Relat Res 1991;266 :3–11. 10.1097/00003086-199105000-00002.
8. Kinner B , RollC. Modifizierte Pirogoff-amputation. Oper Orthop Traumatol 2016;28 :335–44. 10.1007/s00064-016-0452-x.27339219
9. Andronic O , BoeniT, BurkhardMD, et al. Modifications of the pirogoff amputation technique in adults: a retrospective analysis of 123 cases. J Orthop 2019;18 :5–12. 10.1016/j.jor.2019.10.008.32189875
10. Nather A , WongKL, LimAS, et al. The modified pirogoff’s amputation in treating diabetic foot infections: surgical technique and case series. Diabet Foot Ankle 2014;5 :5. 10.3402/dfa.v5.23354.
11. Taniguchi A , TanakaY, KadonoK, et al. Pirogoff ankle disarticulation as an option for ankle disarticulation. Clin Orthop Relat Res 2003;414 :322–8. 10.1097/01.blo.0000079444.64912.d6.
12. Gessmann J , CitakM, FehmerT, et al. Ilizarov external frame technique for Pirogoff amputations with ankle disarticulation and tibiocalcaneal fusion. Foot Ankle Int 2013;34 :856–64. 10.1177/1071100713475612.23391628
13. Pinzur M , KaminskyM, SageR, et al. Amputations at the middle level of the foot. A retrospective and prospective review. J Bone Joint Surg Am 1986;68 :1061–4. 10.2106/00004623-198668070-00013.3745244
