Multi-omics integration deciphers arsenic-induced multi-organ toxicity and the novel ferroptosis axis.
Chronic arsenic exposure can lead to multi-organ injury through mechanisms like ferroptosis, but more research is needed to confirm these findings.
Where it sits
this study against the rest of the efsubaglutide corpusSummary and findings
This review addresses the molecular mechanisms of arsenic-induced multi-organ toxicity, focusing on the role of ferroptosis. It integrates various omics technologies to elucidate how arsenic disrupts selenium metabolism and affects organ susceptibility. The findings suggest a need for further research to validate these mechanisms.
Abstract
Chronic arsenic exposure threatens over 200 million people worldwide and induces multi-organ injury, yet the panoramic molecular reprogramming across organs remains incompletely understood, and traditional single-omics approaches fail to capture cross-level and cross-organ regulatory associations. This review systematically integrates evidence from global epidemiology to single-cell spatial omics, tracing the evolution of multi-omics technologies-from single-platform profiling to data fusion strategies such as coupled matrix factorization (CMF) and the DIABLO framework, two complementary multi-omics integration approaches-and to cutting-edge spatial transcriptomics. We highlight ferroptosis as a common mechanism in arsenic-induced multi-organ injury. At the molecular level, we propose a mechanistic model wherein arsenic (AsIII) disrupts selenium metabolism by inhibiting Sec-tRNA<sup>Sec</sup> synthesis, thereby impairing selenoprotein (especially GPX4) biosynthesis, a paradigm distinct from the traditional "ROS burst → lipid peroxidation" theory. Supporting evidence includes reduced <sup>75</sup>Se incorporation into cellular RNA, genetic deletion of PRDX6 exacerbating ferroptosis, and rescue by selenium supplementation via Nrf2 activation. At the organ level, we compare toxicity features and propose that tissue-intrinsic ferroptosis thresholds-determined by iron content, PUFA-phospholipid composition, GSH reserves, GPX4 redundancy, and selenium availability-govern differential organ susceptibility; the brain shows extreme vulnerability, whereas the liver exhibits relative resistance. Emerging spatial omics further reveals elevated arsenic-responsive gene expression in tumor-adjacent regions. This systems toxicology paradigm offers mechanistic grounding for combinatorial biomarker panels and genotype-guided precision selenium supplementation, although definitive causal validation through tissue-specific Gpx4 knockout or Sec-tRNA<sup>Sec</sup> rescue experiments remains a critical next step. We also discuss prospects for AI-driven toxicity prediction models.