ArticleCardiovascular toxicology2025
Associations Between Lead and Cadmium Exposure and Subclinical Cardiovascular Disease in U.S. Adults.
Article in Cardiovascular toxicology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Chelation treatment in a novel sub-toxic multi-metal model in rats.Biometals : an international journal on the role of metal ions in biology, biochemistry, and medicine · 2026Article
- Multi-Targeted Mechanisms of Phytochemicals in Mitigating Cadmium-Induced Breast Cancer.Medicines (Basel, Switzerland) · 2026Review
- Global burden of cardiovascular disease attributable to lead exposure: based on the global burden of disease study 2021.Frontiers in public health · 2026Article
- Post-pubertal Susceptibility to Cadmium-Induced Cardiac Injury: Role of Metallothionein, Antioxidant Defense, and Endocrine Modulation.Cardiovascular toxicology · 2025Article
- Dose-Dependent Effects of Subchronic Lead Exposure on the Right Atrium and Right Ventricle of Rats: An In Vitro Investigation.Cardiovascular toxicology · 2025Article
- Hypertension in People Exposed to Environmental Cadmium: Roles for 20-Hydroxyeicosatetraenoic Acid in the Kidney.Journal of xenobiotics · 2025Review
- Association Between Blood Cadmium Levels and Heart Failure Risk: Insights From NHANES 2009-2014.Cardiovascular therapeutics · 2025Article
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3 authors.
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Abstract
The impact of lead and cadmium exposure on subclinical cardiovascular disease (CVD), indicated by elevated high-sensitivity cardiac troponin (hs-cTnT) and N-terminal pro b-type natriuretic peptide (NT-proBNP) remains uncertain. We analyzed data from participants aged 20 and older, without overt CVD, in the National Health and Nutrition Examination Survey (NHANES; 1999-2004). Elevated lead and cadmium levels were defined as 3.5 μg/dL and 1.0 μg/L (inductively coupled plasma mass spectrometry) and 3.8 μg/dL and 0.9 μg/L (atomic absorption spectrometry), respectively. Elevated hs-cTnT was ≥ 19 ng/L, and elevated NT-proBNP was ≥ 125 pg/mL. Multivariate logistic regression estimated the odds ratios (OR) and 95% confidence intervals (CI) for elevated biomarkers. Among 10,197 participants (mean age 48.8 years; 50.3% female), 5.3% had elevated hs-cTnT and 19.4% had elevated NT-proBNP. Elevated blood lead was associated with increased ORs for elevated hs-cTnT (OR 1.45, 95% CI 1.15-1.84) and NT-proBNP (OR 1.66, 95% CI 1.40-1.97). The corresponding ORs (95% CI) for elevated blood cadmium were 1.33 (1.02, 1.74) and 1.39 (1.18, 1.65). The effect of elevated blood lead on NT-proBNP was particularly pronounced among non-Hispanic Blacks (OR [95% CI], 3.26 [2.24, 4.74]) compared to Mexican Americans (1.46 [0.99, 2.17]) and non-Hispanic Whites (1.31 [1.02, 1.68]) and was stronger in individuals with impaired kidney function (OR [95% CI], 2.31 [1.43, 3.75]) compared to those with normal kidney function (1.44 [1.18, 1.75]). This study first reveals the association between lead and cadmium exposure and subclinical CVD, underscoring the need for targeted preventive measures to reduce cardiovascular risk and improve health outcomes.
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