Division of Genetics, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA; Belozersky Institute of Physico-Chemical Biology, Moscow State University, Moscow 119234, Russia.
Division of Genetics, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA.
Cell. 2023 Jun 22;186(13):2929-2949.e20. doi: 10.1016/j.cell.2023.05.002. Epub 2023 Jun 3.
Lifespan varies within and across species, but the general principles of its control remain unclear. Here, we conducted multi-tissue RNA-seq analyses across 41 mammalian species, identifying longevity signatures and examining their relationship with transcriptomic biomarkers of aging and established lifespan-extending interventions. An integrative analysis uncovered shared longevity mechanisms within and across species, including downregulated Igf1 and upregulated mitochondrial translation genes, and unique features, such as distinct regulation of the innate immune response and cellular respiration. Signatures of long-lived species were positively correlated with age-related changes and enriched for evolutionarily ancient essential genes, involved in proteolysis and PI3K-Akt signaling. Conversely, lifespan-extending interventions counteracted aging patterns and affected younger, mutable genes enriched for energy metabolism. The identified biomarkers revealed longevity interventions, including KU0063794, which extended mouse lifespan and healthspan. Overall, this study uncovers universal and distinct strategies of lifespan regulation within and across species and provides tools for discovering longevity interventions.
寿命在物种内和物种间存在差异,但控制寿命的一般原则仍不清楚。在这里,我们对 41 种哺乳动物进行了多组织 RNA-seq 分析,确定了长寿特征,并研究了它们与衰老的转录组生物标志物和已建立的延长寿命干预措施的关系。综合分析揭示了物种内和物种间共享的长寿机制,包括下调的 Igf1 和上调的线粒体翻译基因,以及独特的特征,如先天免疫反应和细胞呼吸的不同调节。长寿物种的特征与与年龄相关的变化呈正相关,并且富含参与蛋白水解和 PI3K-Akt 信号传导的进化上古老的必需基因。相反,延长寿命的干预措施对抗衰老模式,并影响富含能量代谢的年轻、易变的基因。所鉴定的生物标志物揭示了长寿干预措施,包括 KU0063794,它延长了小鼠的寿命和健康寿命。总的来说,这项研究揭示了物种内和物种间寿命调节的普遍和独特策略,并为发现长寿干预措施提供了工具。