Multi-omic underpinnings of heterogeneous aging across multiple organ systems.

IF 11.1 Q1 CELL BIOLOGY
Jie Xiong, Xiaoting Zhu, Yutong Guo, Hao Tang, Chengji Dong, Bo Wang, Mengran Liu, Zhaoyue Li, Yingfeng Tu
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引用次数: 0

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.

跨多器官系统的异质性衰老的多组学基础。
衰老是慢性疾病和死亡率的主要决定因素,但器官特异性衰老轨迹各不相同,这种异质性背后的分子基础尚不清楚。为了阐明这一点,我们整合了基因组学、表观基因组学、转录组学、蛋白质组学和代谢组学数据,采用后全基因组关联研究方法系统地研究了9种器官特异性衰老时钟和4种基于血液的表观遗传时钟的分子机制。我们揭示了这些衰老相关性状之间的遗传相关性和特定表型集群,确定了异质性衰老的优先遗传药物靶点,并阐明了异质性衰老介导的下游蛋白质组学和代谢组学效应。我们构建了跨多器官系统的异质性衰老的跨层分子相互作用网络,并表征了这种异质性的可检测生物标志物。综合这些发现,我们开发了一个基于R/ shine的框架,提供了异质性衰老的综合多组学分子景观,从而促进对衰老异质性的理解,并为精确医学策略提供信息,以延缓器官特异性衰老,预防或治疗其相关的慢性疾病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.10
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0.00%
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