
==== Front
Sci Rep
Sci Rep
Scientific Reports
2045-2322
Nature Publishing Group UK London

39232126
71579
10.1038/s41598-024-71579-w
Article
Association of triglyceride-glucose-body mass index with all-cause and cardiovascular mortality among individuals with chronic kidney disease
Chen Tao 12
Wan Hao 1
Luo Yixing 3
Chen Luyao ndyfy05040@ncu.edu.cn

14
1 https://ror.org/042v6xz23 grid.260463.5 0000 0001 2182 8825 Department of Urology, The First Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, China
2 https://ror.org/042v6xz23 grid.260463.5 0000 0001 2182 8825 Department of Urology, The Second Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, China
3 https://ror.org/042v6xz23 grid.260463.5 0000 0001 2182 8825 Department of Gastroenterology, The First Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, China
4 https://ror.org/02qp3tb03 grid.66875.3a 0000 0004 0459 167X Division of Nephrology and Hypertension, Mayo Clinic, Rochester, Minnesota USA
4 9 2024
4 9 2024
2024
14 2059318 6 2024
29 8 2024
© The Author(s) 2024
2024
https://creativecommons.org/licenses/by-nc-nd/4.0/ Open Access This article is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License, which permits any non-commercial use, sharing, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if you modified the licensed material. You do not have permission under this licence to share adapted material derived from this article or parts of it. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by-nc-nd/4.0/.
There is still a paucity of research on the relationship between triglyceride-glucose-body mass index (TyG-BMI) and long-term all-cause and cardiovascular disease (CVD) mortality in patients with chronic kidney disease (CKD). The objective of this study was to explore the relationship between the TyG-BMI index and mortality rate and to determine valuable predictive factors for the survival status of this population. Data were obtained from the National Health and Nutrition Examination Survey (NHANES 2001–2018) and the National Death Index (NDI). We used multivariate Cox regression and restricted cubic spline (RCS) to analyze the link between the TyG-BMI index and all-cause and CVD mortality. Subgroup analysis was conducted according to age, gender, race, education and poverty. In addition, receiver operating characteristic (ROC) curves were utilized to assess the differentiation of the TyG-BMI index in predicting mortality. A total of 3089 individuals were enrolled. Over a median follow-up period of 81 months, 1097 individuals passed away. The RCS analysis revealed a U-shaped link between the TyG-BMI index and all-cause and CVD mortality. The ROC curve indicated that the TyG-BMI index has a stronger diagnostic effect than the TyG index. Subgroup analysis results demonstrated that the TyG-BMI index was more significantly correlated with all-cause and CVD mortality rates in elderly patients. In the American population, a U-shaped association was discovered between the baseline TyG-BMI index and all-cause and cardiovascular mortality rates in CKD patients. The thresholds for all-cause and CVD mortality were found to be 299.31 and 294.85, respectively.

Keywords

Chronic kidney disease
TyG-BMI index
All-cause mortality
Cardiovascular mortality
Subject terms

Biomarkers
Cardiology
Diseases
Nephrology
Risk factors
issue-copyright-statement© Springer Nature Limited 2024
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pmcIntroduction

As a serious health issue, chronic kidney disease (CKD) affects 15–20% of the global population. This condition poses a substantial threat to public health, presenting a formidable challenge for both the international community and healthcare systems worldwide1. Due to its irreversible progression, the burden of CKD rapidly increases, with CKD having the highest disability and mortality rates among chronic diseases2. Identifying and intervening early on hazard factors that influence prognosis is essential for alleviating the global burden of cardiovascular disease (CVD) among CKD patients.

Insulin resistance (IR) is a key characteristic of metabolic syndrome, marked by a decreased ability of insulin to effectively promote glucose utilization3. IR is acknowledged as a hazard factor contributing to the development of macrovascular lesions4. Although the high insulin normal glucose clamp test is considered the gold standard for measuring insulin resistance (IR), it is a invasive procedure, making it unsuitable for clinical research5. A practical alternative evaluation metric is the Homeostatic Model Assessment of Insulin Resistance (HOMA-IR), which is derived from measurements of fasting blood glucose and insulin levels6. However, circulating insulin concentration is not conventionally measured in primary healthcare settings, prompting the development of various simple and feasible alternative indicators for evaluating insulin resistance (IR). Notable among these are the triglyceride glucose index (TyG-index) and the triglyceride glucose body mass index (TyG-BMI index)7,8. Several studies have displayed an link between the TyG index and the onset and progression of chronic kidney disease9,10. However, few studies have assessed the link between TyG-BMI and all-cause and cardiovascular mortality in patients with chronic kidney disease. Currently, there remains a lack of evidence to support the TyG-BMI index as a long-term predictor of all-cause mortality risk in patients with CKD.

This study utilized a large sample of American adults to probe into the link between the TyG-BMI index and long-term all-cause mortality, as well as CVD mortality, in patients with chronic kidney disease (CKD). The goal is to identify valuable predictive factors for the survival status of this population.

Methods

Study design

The data for this study are sourced from the NHANES database, which is designed to evaluate the health and nutritional status of Americans across diverse demographics. The NHANES protocol has obtained informed written consent from all participants in the study. This cross-sectional study included 91,351 adult participants from NHANES (2001–2018). The study process is shown in Fig. 1. The exclusion criteria were: (1) Missing data on diagnosis of CKD; (2) participants with triglyceride glucose index deficiency; (3) participants lacking outcome or covariates.Fig. 1 Flowchart displaying the selection of participants.

Diagnosis of chronic kidney disease

The diagnosis of chronic kidney disease (CKD) is established based on international guidelines. According to these guidelines, CKD is defined by an estimated glomerular filtration rate (eGFR) of less than 60 mL/min/1.73 m2, or proteinuria of at least 30 mg/g, or both11. The glomerular filtration rate is calculated using the Chronic Kidney Disease Epidemiology Collaboration (CKD-EPI) equation, which estimates GFR based on serum creatinine as a marker of renal function12. The classification of CKD stages follows international guidelines as well: CKD Stage I: eGFR ≥ 90 mL/min/1.73 m2, CKD Stage II: 60 ≤ eGFR < 90 mL/min/1.73 m2, CKD Stage III: 30 ≤ eGFR < 60 mL/min/1.73 m2, CKD Stage IV: 15 ≤ eGFR < 30 mL/min/1.73 m2, CKD Stage V: eGFR < 15 mL/min/1.73 m213.

Exposure variables and outcomes

The TyG-BMI index is calculated by multiplying BMI with the TyG index, where BMI is defined as weight divided by height squared (weight/height2), and the TyG index is computed as Ln [fasting triglycerides (mg/dL) × fasting blood glucose (mg/dL)/2]. Triglycerides and fasting blood glucose concentrations were measured using enzymatic methods on Roche Modular P and Roche Cobas 6000 biochemical analyzers. The primary endpoint of this study is all-cause mortality, while the secondary endpoint focuses on cardiovascular mortality. To track these outcomes, subjects were followed until December 31, 2019. The mortality status of each participant was determined by linking their records to the National Death Index, ensuring accurate and comprehensive data on the causes and timing of deaths.

Covariates

Information on various demographic and health-related factors, including age, gender, race/ethnicity, education level, household income, smoking status, disease status, and biochemical parameters, were collected from NHANES family interviews. The specific classification is shown in Table 1. Table 1 The characteristics of participants according to survival status.

Variables	Total participants (n = 3089)	Surviving participants (n = 1992)	Dead participants (n = 1097)	P-valuea	
Age, years	60.46 (0.46)	55.80 (0.58)	71.43 (0.53)	 < 0.0001	
Gender, n (%)	 < 0.0001	
 Female	1630 (57.09)	1132 (60.10)	498 (50.00)		
 Male	1459 (42.91)	860 (39.90)	599 (50.00)		
Race, n (%)	 < 0.0001	
 Non-Hispanic White	1568 (69.88)	841 (66.01)	727 (78.99)		
 Non-Hispanic Black	612 (12.17)	432 (12.85)	180 (10.56)		
 Mexican American	475 (7.74)	365 (9.45)	110 (3.70)		
 Other Hispanic	201 (4.06)	158 (4.69)	43 (2.58)		
 Other race	233 (6.16)	196 (7.00)	37 (4.18)		
Marital, n (%)	 < 0.0001	
 Married	1730 (59.15)	1181 (62.03)	549 (52.36)		
 Never married	278 (9.71)	225 (11.57)	53 (5.35)		
 SDW	1081 (31.14)	586 (26.40)	495 (42.30)		
PIR, n (%)	0.003	
 < 1.3	1038 (25.16)	668 (24.41)	370 (26.92)		
 1.3–1.85	495 (14.55)	297 (13.20)	198 (17.74)		
 > 1.85	1556 (60.29)	1027 (62.39)	529 (55.34)		
Education, n (%)	 < 0.001	
 High school grad or equivalent	1017 (37.91)	697 (39.93)	320 (33.16)		
 Less than high school	993 (23.48)	587 (20.82)	406 (29.77)		
 Some college or above	1079 (38.60)	708 (39.26)	371 (37.07)		
Smoke, n (%)	 < 0.0001	
 Former	1012 (32.45)	564 (28.86)	448 (40.91)		
 Never	1569 (50.69)	1085 (53.79)	484 (43.38)		
 Now	508 (16.86)	343 (17.35)	165 (15.71)		
Hypertension, n (%)	 < 0.0001	
 No	843 (31.55)	647 (37.61)	196 (17.27)		
 Yes	2246 (68.45)	1345 (62.39)	901 (82.73)		
Diabetes, n (%)	 < 0.0001	
 No	1798 (62.33)	1194 (65.91)	604 (53.90)		
 Yes	1291 (37.67)	798 (34.09)	493 (46.10)		
Cardiovascular disease, n (%)	 < 0.0001	
 No	2240 (75.32)	1584 (81.70)	656 (60.30)		
 Yes	849 (24.68)	408 (18.30)	441 (39.70)		
CKD stage, n (%)	 < 0.0001	
 Stage I	920 (34.01)	798 (42.38)	122 (14.37)		
 Stage II	739 (21.75)	448 (19.93)	291 (26.07)		
 Stage III	1290 (40.54)	687 (35.64)	603 (52.17)		
 Stage IV	102 (2.69)	43 (1.59)	59 (5.29)		
 Stage V	38 (0.95)	16 (0.46)	22 (2.11)		
TC, mmol/L	5.01 (0.03)	5.02 (0.03)	4.98 (0.04)	0.35	
TG, mmol/L	1.72 (0.04)	1.71 (0.06)	1.76 (0.04)	0.49	
uACR, mg/g	187.72 (13.67)	155.63 (13.30)	263.29 (34.75)	0.005	
eGFR, mL/min/1.73 m2	74.90 (0.78)	80.84 (1.01)	60.93 (1.02)	 < 0.0001	
TyG	8.86 (0.02)	8.82 (0.03)	8.94 (0.03)	0.002	
BMI	30.11 (0.20)	30.56 (0.27)	29.04 (0.26)	 < 0.001	
TyG-BMI	268.32 (2.20)	271.36 (2.91)	261.16 (2.80)	0.01	
aThe P-value refers to the comparison between surviving and deceased patients in CKD patients.

Statistical analysis

Given the complex sampling design of NHANES, the analysis incorporated minimum sample weights. Participants were categorized into two groups based on their survival status to depict the characteristics of the study population. Continuous variables are represented by weighted means and standard error (SE), with hypothesis testing conducted using either the t-test or the Kruskal–Wallis rank sum test, depending on the distribution of the data. Categorical variables are represented by weighted proportions, and their differences between groups were tested using the chi-square test. The multivariate Cox proportional hazards model was used to evaluate the relationship between the TyG-BMI index and survival status. The dependent variables were survival time and survival status. We constructed three regression models by adjusting for different covariates. In Model 1, no adjustments were made. Model 2 was adjusted for age, gender, race, education level, poverty status (PIR), and smoking status. Model 3 is a comprehensive adjustment model, which further adjusted for hypertension, diabetes, cardiovascular disease, blood lipids, uACR, and eGFR levels based on Model 2. We calculated the hazard ratio (HR) for each covariate and its 95% confidence interval to quantify the strength of the association between the TyG-BMI index and mortality. Restricted Cubic Splines (RCS) analysis, a flexible nonlinear regression method, was employed to explore the nonlinear relationship between continuous variables and outcome variables. We selected three nodes (5th, 50th, and 95th percentiles) and constructed an RCS function to capture the nonlinear effects of the TyG-BMI index. The model with the RCS term was compared to the linear model using a likelihood ratio test to determine the significance of the nonlinear relationship. An RCS curve was drawn to illustrate the relationship between the TyG-BMI index and mortality rate. Receiver operating characteristic (ROC) curves were applied to assess the recognition ability and accuracy of the TyG and TyG-BMI indices. Furthermore, stratified analyses were conducted based on age, gender, race, education and poverty. Data analysis was performed applying R software (version 4.2.1), and a P-value of less than 0.05 was considered statistically significant.

Results

Participant characteristics

A total of 3089 participants were included. The baseline characteristics revealed that participants who died during the follow-up period tended to be older, single, and had lower education levels and incomes. They were also more likely to be smokers and patients with diabetes, hypertension, and heart disease. Detailed baseline characteristics are presented in Table 1.

Association between TyG-BMI index and survival status

To evaluate the correlation between the TyG-BMI index and mortality rates, three models were developed. Participants were grouped into quartiles (Q1–Q4) based on the TyG-BMI index. In a fully adjusted model, the highest quartile group was significantly associated with lower all-cause mortality (HR 0.74; 95% CI 0.57–0.93) compared to the lowest quartile group (Tables 2, 3). RCS regression analysis was conducted to elucidate the specific relationship between the TyG-BMI index and mortality risk in CKD patients. The RCS results indicated a U-shaped link between TyG-BMI and the risk of all-cause and CVD mortality, with inflection points at 299.31 and 294.85, respectively. Both high and low TyG-BMI values increased the risk of all-cause and cardiovascular mortality in this population (Fig. 2). In addition, we divided CKD stages into two groups: stages I–II and stages III–V. Our analysis indicates that there remains a U-shaped relationship between the TyG BMI index and both all-cause mortality and cardiovascular mortality in CKD patients across these different groupings (Fig. 3). Table 2 Relationship between TyG-BMI index and all-cause mortality.

Exposure	Model 1	Model 2	Model 3	
OR (95% CI)	P value	OR (95% CI)	P value	OR (95% CI)	P value	
TyG-BMI	
 Q1	Ref		Ref		Ref		
 Q2	0.82 (0.67, 1.02)	0.07	0.76 (0.63, 0.90)	0.002	0.72 (0.60, 0.86)	 < 0.001	
 Q3	0.83 (0.68, 1.02)	0.08	0.77 (0.64, 0.91)	0.003	0.67 (0.56, 0.81)	 < 0.0001	
 Q4	0.68 (0.54, 0.85)	 < 0.001	0.98 (0.80, 1.21)	0.87	0.74 (0.57, 0.93)	0.01	
 P for trend	 < 0.001		0.562		0.002		
Model 1: not adjusted.

Model 2: adjusted for age, gender, race, education level, poverty status (PIR), and smoking status.

Model 3: adjusted for age, gender, race, education level, poverty status (PIR), and smoking status, hypertension, diabetes, cardiovascular disease, blood lipids, uACR, and eGFR levels.

Table 3 Relationship between TyG-BMI index and CVD mortality.

Exposure	Model 1	Model 2	Model 3	
OR (95% CI)	P value	OR (95% CI)	P value	OR (95% CI)	P value	
TyG-BMI	
 Q1	Ref		Ref		Ref		
 Q2	1.01 (0.65, 1.57)	0.96	0.80 (0.54, 1.18)	0.26	0.74 (0.49, 1.12)	0.15	
 Q3	0.90 (0.66, 1.24)	0.53	0.71 (0.52, 0.98)	0.03	0.60 (0.43, 0.83)	0.002	
 Q4	1.00 (0.69, 1.44)	0.98	1.30 (0.91, 1.87)	0.16	0.85 (0.54, 1.34)	0.48	
 P for trend	0.852		0.273		0.312		
Model 1: not adjusted.

Model 2: adjusted for age, gender, race, education level, poverty status (PIR), and smoking status.

Model 3: adjusted for age, gender, race, education level, poverty status (PIR), and smoking status, hypertension, diabetes, cardiovascular disease, blood lipids, uACR, and eGFR levels.

Fig. 2 The restricted cubic regression between TyG-BMI index with all-cause mortality (A) and cardiovascular mortality (B) in fully adjusted model.

Fig. 3 Restricted cubic splines (RCS) analysis of the TyG-BMI index and its association with all-cause mortality and cardiovascular mortality stratified by CKD stages. (A,B) Represent CKD stages I–II, while (C,D) represent CKD stages III–V.

Subgroup analysis results

In subgroup analyses, the association between the TyG-BMI index and all-cause and cardiovascular mortality was consistent across subgroups stratified by sex, race, education and poverty. However, the correlation was more significant in elderly CKD patients for both all-cause and CVD mortality (Table 4). Table 4 Result of subgroup analysis.

Subgroup	Q1	Q2	Q3	Q4	P for interaction	
All-cause mortality	
 Age (years)	 < 0.0001	
  < 60	1	1.18 (0.53, 2.62)	0.85 (0.35, 2.06)	1.17 (0.58, 2.36)		
  60+	1	0.59 (0.49, 0.72)**	0.55 (0.45, 0.67)**	0.45 (0.34, 0.60)**		
 Gender	0.465	
  Male	1	0.66 (0.52, 0.84)**	0.64 (0.48, 0.84)**	0.81 (0.58, 1.12)		
  Female	1	0.78 (0.59, 1.04)	0.69 (0.51, 0.92)*	0.69 (0.49, 0.97)*		
 Race	0.938	
  Non-Hispanic White	1	0.72 (0.58, 0.90)**	0.70 (0.57, 0.86)**	0.76 (0.57, 1.02)		
  Non-Hispanic Black	1	0.65 (0.41, 1.01)	0.49 (0.30, 0.80)**	0.47 (0.28, 0.79)**		
  Mexican American	1	0.82 (0.38, 1.76)	0.67 (0.30, 1.46)	0.76 (0.35, 1.68)		
  Other Hispanic	1	1.14 (0.45, 2.92)	0.67 (0.22, 2.01)	0.96 (0.15, 6.09)		
  Other race	1	0.54 (0.16, 1.90)	1.31 (0.41, 4.20)	1.66 (0.33, 8.28)		
 Education	0.053	
  High school grad or equivalent	1	0.60 (0.43, 0.85)**	0.43 (0.29, 0.63)**	0.50 (0.33, 0.74)**		
  Less than high school	1	0.76 (0.55, 1.04)	0.72 (0.52, 0.99)*	0.69 (0.46, 1.04)		
  Some college or above	1	0.79 (0.59, 1.06)	0.86 (0.63, 1.19)	1.16 (0.80, 1.67)		
 PIR	0.239	
  < 1.3	1	0.62 (0.44, 0.85)**	0.54 (0.38, 0.78)**	0.81 (0.55, 1.19)		
  1.3–1.85	1	0.66 (0.43, 1.01)	0.57 (0.35, 0.93)*	0.52 (0.27, 1.01)		
  > 1.85	1	0.79 (0.60, 1.03)	0.77 (0.58, 1.04)	0.73 (0.49, 1.09)		
CVD mortality	
 Age (years)	0.018	
  < 60	1	1.14 (0.49, 2.60)	0.89 (0.37, 2.14)	1.17 (0.59, 2.34)		
  60+	1	0.71 (0.58, 0.85)**	0.67 (0.55, 0.82)**	0.72 (0.54, 0.95)*		
 Gender	0.521	
  Male	1	0.66 (0.52, 0.84)**	0.64 (0.48, 0.84)**	0.81 (0.59, 1.12)		
  Female	1	0.78 (0.59, 1.04)	0.69 (0.51, 0.92)*	0.69 (0.49, 0.97)*		
 Race	0.611	
  Non-Hispanic White	1	0.72 (0.58, 0.90)**	0.70 (0.57, 0.86)**	0.76 (0.57, 1.02)		
  Non-Hispanic Black	1	0.65 (0.41, 1.01)	0.49 (0.30, 0.80)**	0.47 (0.28, 0.79)**		
  Mexican American	1	0.82 (0.38, 1.76)	0.67 (0.30, 1.46)	0.76 (0.35, 1.68)		
  Other Hispanic	1	1.14 (0.45, 2.92)	0.67 (0.22, 2.01)	0.96 (0.15, 6.09)		
  Other race	1	0.54 (0.16, 1.90)	1.31 (0.41, 4.20)	1.66 (0.33, 8.28)		
 Education	0.392	
  High school grad or equivalent	1	0.60 (0.43, 0.85)**	0.43 (0.29, 0.63)**	0.50 (0.33, 0.74)**		
  Less than high school	1	0.76 (0.55, 1.04)	0.72 (0.52, 0.99)*	0.69 (0.46, 1.04)		
  Some college or above	1	0.79 (0.59, 1.06)	0.86 (0.63, 1.19)	1.16 (0.80, 1.67)		
 PIR	0.251	
  < 1.3	1	0.62 (0.44, 0.85)**	0.54 (0.38, 0.78)**	0.81 (0.55, 1.19)		
  1.3–1.85	1	0.66 (0.43, 1.01)	0.57 (0.35, 0.93)*	0.52 (0.27, 1.01)		
  > 1.85	1	0.79 (0.60, 1.03)	0.77 (0.58, 1.04)	0.73 (0.49, 1.09)		
*Refer to < 0.05.

**Refer to < 0.01.

Sensitivity and specificity analysis

The receiver operating characteristic (ROC) curve (Fig. 4) was utilized to access the sensitivity and specificity of the TyG-BMI index as a prognostic diagnostic tool. Compared to the TyG index alone, the TyG-BMI index demonstrated higher predictive ability for all-cause and cardiovascular mortality, with values of 0.578 and 0.550, respectively. In addition, we determined the optimal cutoff point for TyG-BMI using the Youden index. As shown in Table 5, the optimal cutoff values for TyG-BMI in predicting all-cause mortality and cardiovascular disease (CVD) mortality in patients with chronic kidney disease are 272.57 and 280.34, respectively.Fig. 4 ROC curves for different surrogates to predict all-cause mortality (A) and cardiovascular mortality (B).

Table 5 The efficacy of TyG-BMI in predicting all-cause mortality and CVD mortality.

Variables	AUC	95% CI	Cutoff value	
All-cause mortality	
 TyG-BMI	0.574	0.553–0.594	272.57	
 TyG	0.527	0.507–0.548	8.23	
CVD mortality	
 TyG-BMI	0.534	0.510–0.567	280.34	
 TyG	0.528	0.497–0.560	8.34	

Discussion

This study aims to reveal how the combination of triglyceride-glucose index and body mass index (TyG-BMI) affects the mortality outcomes of this specific population of patients with chronic kidney disease. By employing multivariate Cox regression and RCS analysis, we identified the TyG-BMI index as a reliable predictor of both all-cause and CVD mortality risk in CKD patients. The analysis revealed a U-shaped association between the TyG-BMI index and mortality risk, indicating that both high and low TyG-BMI values are linked to an increased risk of mortality in this population. In addition, the results of subgroup analysis indicated that the association between the TyG-BMI index and all-cause mortality and cardiovascular mortality was consistent across subgroups defined by gender, race/ethnicity, poverty rate, and education level (P for interaction > 0.05). However, subgroup analysis stratified by age revealed that in elderly CKD patients, the correlation between the TyG-BMI index and both all-cause mortality and CVD mortality was more significant. This finding suggests that the TyG-BMI index has broad applicability as a predictor of all-cause mortality and CVD mortality. The TyG-BMI index can serve as an effective risk assessment tool regardless of gender, race, economic status, or education level. This discovery holds significant implications for public health policy and clinical practice, as it indicates that the TyG-BMI index can be widely used for risk assessment among CKD patients in diverse populations. However, the stronger correlation between the TyG-BMI index and mortality in elderly CKD patients suggests that special attention should be given to changes in the TyG-BMI index within this specific population. As age increases, the decline in metabolic function and the associated rise in chronic disease risk may render elderly patients more sensitive to changes in the TyG-BMI index. Therefore, in clinical management, elderly CKD patients may require more frequent and careful monitoring and intervention.

Insulin resistance (IR) is broadly acknowledged for its significant role in the development of type 2 diabetes, dyslipidemia, and obesity within the general population14,15. The TyG-BMI index integrates triglycerides (TG), fasting blood glucose, and BMI, making it a simple and feasible IR evaluation tool16. This comprehensive indicator is considered a more accurate IR marker than a single index. Many studies support that the TyG-BMI index is closely related to non-alcoholic fatty liver disease (NAFLD), cardiovascular events, prehypertension, and diabetes17–20. These pieces of evidence suggest that the TyG-BMI index may become an important prognostic indicator. In our study, the TyG-BMI index exhibited comparable predictive value for both all-cause and cardiovascular mortality in patients with CKD. Specifically, a U-shaped relationship between the baseline TyG-BMI index and all-cause mortality was identified. This indicates that both low and high values of the TyG-BMI index are associated with increased mortality risk in patients with chronic kidney disease (CKD), suggesting that an optimal range of the TyG-BMI index may be crucial for reducing mortality risk in this population. This U-shaped association between insulin resistance indicators and poor prognosis has been confirmed in previous studies using NHANES data. The mechanism behind this U-shaped association is still uncertain, but it may involve several factors.

On the one hand, elevated TyG-BMI is linked to higher insulin resistance and metabolic disorders, such as increased levels of triglycerides and glucose, which are known risk factors for cardiovascular diseases (CVD)21,22. Patients with high TyG-BMI often exhibit increased levels of LDL cholesterol, lower HDL cholesterol, and higher levels of inflammatory markers like hs-CRP, which contribute to the development and progression of atherosclerosis and subsequent cardiovascular events23,24. Additionally, high TyG-BMI is associated with conditions like hypertension and diabetes, which further elevate the risk of cardiovascular mortality25. On the other hand, low TyG-BMI may be indicative of malnutrition, sarcopenia (loss of muscle mass), and frailty, particularly in CKD patients26,27. These conditions can weaken the body’s overall resilience and immune response, making individuals more susceptible to infections, cachexia, and other complications that increase the risk of all-cause mortality. Malnutrition and low muscle mass are critical concerns in CKD patients, as they are linked to poor clinical outcomes and higher mortality rates28,29. In summary, the U-shaped relationship between TyG-BMI and mortality risks highlights the complex interplay of metabolic health, nutritional status, and cardiovascular risk factors. High TyG-BMI exacerbates cardiovascular risks through metabolic disturbances and inflammation, while low TyG-BMI reflects poor nutritional status and physical frailty, both leading to increased mortality in CKD patients.

Our research offers several significant advantages. First, the complex sampling design effectively adjusts the representativeness of different populations, ensuring the wide applicability and reliability of the research results. In addition, TyG-related indicators based on routine clinical care are used to evaluate insulin resistance, making them easily accessible and cost-effective biomarkers with broad clinical application prospects. This method is both economical and efficient, offering convenient and powerful tools for health management and disease prevention in clinical practice. However, our research has several notable limitations. The cross-sectional study design restricts our ability to establish a causal relationship between insulin resistance and CKD. Furthermore, like all observational studies, despite adjusting for potential confounders in multivariate models, residual confounders from unmeasured or uncontrolled factors may still exist. For example, due to database limitations, we are unable to include Medication use as a covariate in Cox regression analysis. Future research should consider using databases containing detailed drug use information or conducting prospective study designs to better control for confounding effects of drug use. Lastly, due to data limitations in the NHANES database, we are unable to investigate the impact of different etiologies on the correlation between TyG-BMI and mortality. Future research should consider using databases that contain detailed etiological information or designing prospective studies for more granular subgroup analysis.

Conclusion

The TyG-BMI index may serve as a valuable predictive marker for assessing the risk of all-cause and cardiovascular mortality in patients with chronic kidney disease. The association between this index and mortality rate is non-linear, exhibiting a U-shaped pattern.

Abbreviations

TyG-BMI Triglyceride-glucose-body mass

CKD Chronic kidney disease

NDI National death index

uACR Urinary albumin to creatinine ratio

eGFR Glomerular filtration rate

TC Cholesterol

IR Insulin resistance

Acknowledgements

The authors express sincere gratitude to the individual who generously shared the original dataset for this study.

Author contributions

TC, CLY and HW wrote the main manuscript text and LYX prepared Figs. 1, 2 and 3. All authors reviewed the manuscript.

Funding

This work was supported by Jiangxi Provincial Natural Science Foundation (20232BAB216020 and 20232BAB206104).

Data availability

Data is provided within the manuscript or supplementary information files.

Competing interests

The authors declare no competing interests.

Ethical approval

The NCHS Ethics Review Committee has approved NHANES.

Consent to participate

The patient/participant provided written informed consent to participate in this study.

Publisher's note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

These authors contributed equally: Tao Chen, Hao Wan and Yixing Luo.
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