| [1] | Stuckert J, Nedorost S. Low-cobalt diet for dyshidrotic eczema patients. Contact Dermatitis, 2008; 59, 361−5. doi: 10.1111/j.1600-0536.2008.01469.x |
| [2] | Li X, Zhao Y, Zhang DD, et al. Development of an interpretable machine learning model associated with heavy metals' exposure to identify coronary heart disease among US adults via SHAP: findings of the US NHANES from 2003 to 2018. Chemosphere, 2023; 311, 137039. doi: 10.1016/j.chemosphere.2022.137039 |
| [3] | Barceloux DG, Barceloux D. Cobalt. J Toxicol Clin Toxicol, 1999; 37, 201−6. doi: 10.1081/CLT-100102420 |
| [4] | Leyssens L, Vinck B, Van Der Straeten C, et al. Cobalt toxicity in humans-a review of the potential sources and systemic health effects. Toxicology, 2017; 387, 43−56. doi: 10.1016/j.tox.2017.05.015 |
| [5] | Zeng Y, Feng QS, Hesketh T, et al. Survival, disabilities in activities of daily living, and physical and cognitive functioning among the oldest-old in China: a cohort study. Lancet, 2017; 389, 1619−29. doi: 10.1016/S0140-6736(17)30548-2 |
| [6] | Luo YN, Su BB, Zheng XY. Trends and challenges for population and health during population aging - China, 2015-2050. China CDC Wkly, 2021; 3, 593−8. |
| [7] | Bai RH, Liu YN, Zhang L, et al. Projections of future life expectancy in China up to 2035: a modelling study. Lancet Public Health, 2023; 8, e915−22. doi: 10.1016/S2468-2667(22)00338-3 |
| [8] | Xie M, Li H, Cheng BJ, et al. Association of single and joint urinary metal exposure with carotid atherosclerosis in non-dyslipidemic middle-aged and elderly adults: a retrospective case-control study. Ecotoxicol Environ Saf, 2025; 303, 118981. doi: 10.1016/j.ecoenv.2025.118981 |
| [9] | Xiao LL, Zan GH, Feng XM, et al. The associations of multiple metals mixture with accelerated DNA methylation aging. Environ Pollut, 2021; 269, 116230. doi: 10.1016/j.envpol.2020.116230 |
| [10] | Wang CM, Hong SR, Guan X, et al. Associations between multiple metals exposure and biological aging: evidence from the Dongfeng-Tongji cohort. Sci Total Environ, 2023; 861, 160596. doi: 10.1016/j.scitotenv.2022.160596 |
| [11] | He CH, Gao M, He T, et al. Association of cobalt exposure with all-cause and cardiovascular mortality in U. S. adults. BMC Public Health, 2025; 25, 1757. doi: 10.1186/s12889-025-22753-w |
| [12] | Martinez-Morata I, Schilling K, Glabonjat RA, et al. Association of urinary metals with cardiovascular disease incidence and all-cause mortality in the Multi-Ethnic Study of Atherosclerosis (MESA). Circulation, 2024; 150, 758−69. doi: 10.1161/CIRCULATIONAHA.124.069414 |
| [13] | Wen J, Liu Y, Liao JX, et al. The predictive value of multiple urinary metals in evaluating death risk in asthmatic individuals: a prospective cohort study. Biometals, 2025; 38, 1503−12. doi: 10.1007/s10534-025-00715-4 |
| [14] | Zhang WP, Chen WQ, Lu DQ, et al. Interactive association of metals and Life's Essential 8 with mortality in U. S. adults: a prospective cohort study from the NHANES dataset. BMC Public Health, 2024; 24, 3073. doi: 10.1186/s12889-024-20580-z |
| [15] | Duan WW, Xu C, Liu Q, et al. Levels of a mixture of heavy metals in blood and urine and all-cause, cardiovascular disease and cancer mortality: a population-based cohort study. Environ Pollut, 2020; 263, 114630. doi: 10.1016/j.envpol.2020.114630 |
| [16] | Zheng ZT, Luo HH, Xue QY. The association of urinary heavy metal exposure with frailty susceptibility and mortality in middle-aged and older adults: a population-based study. Arch Public Health, 2024; 82, 44. doi: 10.1186/s13690-024-01275-8 |
| [17] | Risher JF, Todd GD, Meyer D, et al. The elderly as a sensitive population in environmental exposures: making the case. In: Whitacre DM. Reviews of Environmental Contamination and Toxicology Volume 207. Springer. 2010, 95-157. |
| [18] | Wang XD, Xiao P, Wang R, et al. Relationships between urinary metals concentrations and cognitive performance among U. S. older people in NHANES 2011-2014. Front Public Health, 2022; 10, 985127. doi: 10.3389/fpubh.2022.985127 |
| [19] | Domingo-Relloso A, Mcgraw KE, Heckbert SR, et al. Urinary metal levels, cognitive test performance, and dementia in the multi-ethnic study of atherosclerosis. JAMA Netw Open, 2024; 7, e2448286. doi: 10.1001/jamanetworkopen.2024.48286 |
| [20] | 第20条文献在正文中未被引用 Han X, Wei C, Cao GY. Aging, generational shifts, and energy consumption in urban China. Proc Natl Acad Sci USA, 2022; 119, e2210853119 |
| [21] | Lv YB, Mao C, Yin ZX, et al. Healthy Ageing and Biomarkers Cohort Study (HABCS): a cohort profile. BMJ Open, 2019; 9, e026513. doi: 10.1136/bmjopen-2018-026513 |
| [22] | Cao ZJ, Lin SB, Zhao F, et al. Cohort profile: China National Human Biomonitoring (CNHBM)-a nationally representative, prospective cohort in Chinese population. Environ Int, 2021; 146, 106252. doi: 10.1016/j.envint.2020.106252 |
| [23] | Zhou YC, Zhang JM, Lei DZ, et al. Association between heavy metal exposure and diabetic retinopathy related homeostatic dysregulation value in Type 2 diabetic population: a cross-sectional study of NHANES 2003-2016. Ecotoxicol Environ Saf, 2025; 299, 118365. doi: 10.1016/j.ecoenv.2025.118365 |
| [24] | Feng W, He XS, Chen M, et al. Urinary metals and heart rate variability: a cross-sectional study of urban adults in Wuhan, China. Environ Health Perspect, 2015; 123, 217−22. doi: 10.1289/ehp.1307563 |
| [25] | Ren Y, Yang J, Yin P, et al. Urban-rural disparities in mortality due to stroke subtypes in China and its provinces, 2015-2020. Chin Med J (Engl), 2025; 138, 1345−54. doi: 10.1097/CM9.0000000000003135 |
| [26] | Zhang ZZ. Multiple imputation with multivariate imputation by chained equation (MICE) package. Ann Transl Med, 2016; 4, 30. |
| [27] | Tao CZ, Li Z, Fan Y, et al. Estimating lead-attributable mortality burden by socioeconomic status in the USA. Int J Epidemiol, 2024; 53, dyae089. doi: 10.1093/ije/dyae089 |
| [28] | Larsson SC, Wolk A. Urinary cadmium and mortality from all causes, cancer and cardiovascular disease in the general population: systematic review and meta-analysis of cohort studies. Int J Epidemiol, 2016; 45, 782−91. doi: 10.1093/ije/dyv086 |
| [29] | Gauthier J, Wu QV, Gooley TA. Cubic splines to model relationships between continuous variables and outcomes: a guide for clinicians. Bone Marrow Transplant, 2020; 55, 675−80. doi: 10.1038/s41409-019-0679-x |
| [30] | Zhao M, Veeranki SP, Magnussen CG, et al. Recommended physical activity and all cause and cause specific mortality in US adults: prospective cohort study. BMJ, 2020; 370, m2031. doi: 10.3410/f.738239137.793593095 |
| [31] | Cheng T, Yu DD, Li G, et al. Association between exposure to urinary metal and all-cause and cardiovascular mortality in US adults. PLoS One, 2024; 19, e0316045. doi: 10.1371/journal.pone.0316045 |
| [32] | Marsh GM, Buchanich JM, Zimmerman S, et al. Mortality among hardmetal production workers: pooled analysis of cohort data from an international investigation. J Occup Environ Med, 2017; 59, e342−64. doi: 10.1097/JOM.0000000000001151 |
| [33] | Kazemi T, Moodi M, Rajabi S, et al. Trace element concentration and cognitive dysfunction in elderly residents in Birjand. Curr Alzheimer Res, 2022; 19, 674−80. doi: 10.2174/1567205019666220913114154 |
| [34] | Smorgon C, Mari E, Atti AR, et al. Trace elements and cognitive impairment: an elderly cohort study. Arch Gerontol Geriatr, 2004; 38, 393−402. doi: 10.1016/j.archger.2004.04.050 |
| [35] | Liu PY, Huang HY, Zhou QM, et al. Path analysis of trace elements and physiological and biochemical indices associated to mild cognitive impairment in elderly Chinese. Environ Pollut, 2025; 378, 126470. doi: 10.1016/j.envpol.2025.126470 |
| [36] | Ebner BA, Erdahl SA, Lundgreen CS, et al. Brain tissue metal concentrations and Alzheimer's disease neuropathology in total joint arthroplasty patients versus controls. Acta Neuropathol, 2025; 149, 18. doi: 10.1007/s00401-025-02856-9 |
| [37] | Della Torre S, Benedusi V, Fontana R, et al. Energy metabolism and fertility: a balance preserved for female health. Nat Rev Endocrinol, 2014; 10, 13−23. doi: 10.1038/nrendo.2013.203 |
| [38] | Maltais ML, Desroches J, Dionne IJ. Changes in muscle mass and strength after menopause. J Musculoskelet Neuronal Interact, 2009; 9, 186−97. |
| [39] | Romejko K, Szamotulska K, Rymarz A, et al. Muscle mass and muscle strength in non-dialysis-dependent chronic kidney disease patients. J Clin Med, 2024; 13, 6448. doi: 10.3390/jcm13216448 |
| [40] | Liu YK, Zhu WF, Ni DL, et al. Alpha lipoic acid antagonizes cytotoxicity of cobalt nanoparticles by inhibiting ferroptosis-like cell death. J Nanobiotechnol, 2020; 18, 141. doi: 10.1186/s12951-020-00700-8 |
| [41] | Sahoo K, Sharma A. Understanding the mechanistic roles of environmental heavy metal stressors in regulating ferroptosis: adding new paradigms to the links with diseases. Apoptosis, 2023; 28, 277−92. doi: 10.1007/s10495-022-01806-0 |
| [42] | Su LJ, Zhang JH, Gomez H, et al. Reactive oxygen species-induced lipid peroxidation in apoptosis, autophagy, and ferroptosis. Oxid Med Cell Longev, 2019; 2019, 5080843. |
| [43] | Xu SH, Chen B, Wang H, et al. Association between blood cobalt ion concentrations and anemia and cardiovascular diseases: novel evidence of toxicity resulting from metal implants. Front Nutr, 2025; 12, 1614771. doi: 10.3389/fnut.2025.1614771 |
| [44] | Packer M. Cobalt cardiomyopathy: a critical reappraisal in light of a recent resurgence. Circ: Heart Fail, 2016; 9, e003604 . doi: 10.1161/CIRCHEARTFAILURE.116.003604 |
| [45] | Vielee ST, Wise JP Jr. Among gerontogens, heavy metals are a class of their own: a review of the evidence for cellular senescence. Brain Sci, 2023; 13, 500. doi: 10.3390/brainsci13030500 |
| [46] | Wu T, Li HR, Chen WY. Mechanisms and targeted treatments of cobalt-encephalopathy from cobalt-chromium orthopedic implants. Neuroscience, 2025; 584, 32−47. doi: 10.1016/j.neuroscience.2025.08.008 |
| [47] | Chen YL, Zhen CE, Zeng L, et al. Association of blood cadmium and physical activity with mortality: a prospective cohort study. Ecotoxicol Environ Saf, 2025; 290, 117541. doi: 10.1016/j.ecoenv.2024.117541 |
| [48] | Fu XH, Li HR, Song LL, et al. Association of urinary heavy metals co-exposure and adult depression: modification of physical activity. Neurotoxicology, 2023; 95, 117−26. doi: 10.1016/j.neuro.2023.01.008 |