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October 5, 2025Cell Genomics15 citationsOpen Access

Multi-omic underpinnings of heterogeneous aging across multiple organ systems

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JXJie XiongXZXiaoting ZhuYGYutong Guo

Key Points

  • Identified biomarkers help understand the diverse aging processes in various organs, improving health.
  • A genetic correlation network demonstrates how different aging traits cluster, revealing potential drug targets.
  • Utilizing integrated genomic and metabolomic approaches sheds light on the complex biology of aging.
  • Developed an R/Shiny framework to visualize the multi-omic landscape of aging, crucial for precision medicine.

Abstract

Aging is the main determinant of chronic diseases and mortality, yet organ-specific aging trajectories vary, and the molecular basis underlying this heterogeneity remains unclear. To elucidate this, we integrated genomic, epigenomic, transcriptomic, proteomic, and metabolomic data, employing post-genome-wide association study methodologies to systematically investigate the molecular mechanisms of nine organ-specific aging clocks and four blood-based epigenetic clocks. We uncovered genetic correlations and specific phenotypic clusters among these aging-related traits, identified prioritized genetic drug targets for heterogeneous aging, and elucidated downstream proteomic and metabolomic effects mediated by heterogeneous aging. We constructed a cross-layer molecular interaction network of heterogeneous aging across multiple organ systems and characterized detectable biomarkers of this heterogeneity. Integrating these findings, we developed an R/Shiny-based framework that provides a comprehensive multi-omic molecular landscape of heterogeneous aging, thereby advancing the understanding of aging heterogeneity and informing precision medicine strategies to delay organ-specific aging and prevent or treat its associated chronic diseases.

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Cite This Study

Xiong et al. (2025) studied this question.

synapsesocial.com/papers/68e28310dcef4a166ce03ce6https://doi.org/10.1016/j.xgen.2025.101032
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