Type 2 diabetes amplifies environmental Pb toxicity and intergenerational risk
Li, X. Z.; Zhang, C. B.; Xia, X.; Zhang, C.; Pei, C.; Guo, Z.; Li, G.; Ma, L. X.; Luo, H.; Ma, J.; Luo, J.; Cui, H.; He, B.; Li, Q.; Zhong, Y. J.; Zhang, H.; Yang, X.
Show abstract
Type 2 diabetes (T2D) and environmental lead (Pb) exposure intersect as prevalent global health challenges. Prior studies report elevated blood Pb in T2D, but the underlying mechanism and directionality remain unresolved. Here we show that T2D fundamentally alters Pb toxicokinetics, converting otherwise modest exposure into progressive organ injury and heritable risk. In a human cohort, elevated blood Pb in T2D specifically associated with impaired renal function rather than glycaemic control or adiposity. In db/db mice, diabetes increased oral Pb absorption through delayed gastrointestinal transit and epithelial barrier dysfunction, leading to enhanced systemic retention. With sustained exposure, renal Pb accumulation induced tubular stress that reduced effective clearance, creating a feed-forward loop in which diabetes promotes Pb retention and retained Pb accelerates kidney injury. Chronic Pb exposure exacerbated diabetic kidney injury without inducing hyperglycaemia, and short-course chelation attenuated renal stress markers. Beyond somatic toxicity, combined paternal T2D and Pb exposure programmed renal and neurobehavioral phenotypes across generations via sperm RNA. These findings redefine Pb from a passive environmental exposure to a context-dependent driver of disease, identify T2D as a vulnerability state that reshapes toxicant handling, and establish a mechanistic link between metabolic disease, environmental exposure and intergenerational risk. This work highlights the need for vulnerability-informed clinical management and environmental regulation in populations burdened by T2D.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Evolutionarily related host and microbial pathways regulate fat desaturation 95%
- Compensatory ion transport buffers daily protein rhythms to regulate osmotic balance and cellular physiology 95%
- Chemical Imaging Reveals Diverse Functions of Tricarboxylic Acid Metabolites in Root Growth and Development 95%
Similar papers in this journal
- Maternal diet disrupts the placenta-brain axis in a sex-specific manner 96%
- Proteome-wide Mendelian randomization implicates nephronectin as an actionable mediator of the effect of obesity on COVID-19 severity 95%
- Mitochondrial complex III-derived ROS amplify immunometabolic changes in astrocytes and promote dementia pathology 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.