生物
转录组
计算生物学
模式生物
长寿
衰老
比例(比率)
进化生物学
生物信息学
遗传学
基因
基因表达
物理
量子力学
作者
Shulin Mao,Jiayu Su,Longteng Wang,Xiaochen Bo,Cheng Li,Hebing Chen
出处
期刊:Genome Research
[Cold Spring Harbor Laboratory Press]
日期:2023-07-31
卷期号:33 (8): 1381-1394
被引量:6
标识
DOI:10.1101/gr.277491.122
摘要
Accurately measuring biological age is crucial for improving healthcare for the elderly population. However, the complexity of aging biology poses challenges in how to robustly estimate aging and interpret the biological significance of the traits used for estimation. Here we present SCALE, a statistical pipeline that quantifies biological aging in different tissues using explainable features learned from literature and single-cell transcriptomic data. Applying SCALE to the "Mouse Aging Cell Atlas" (Tabula Muris Senis) data, we identified tissue-level transcriptomic aging programs for more than 20 murine tissues and created a multitissue resource of mouse quantitative aging-associated genes. We observe that SCALE correlates well with other age indicators, such as the accumulation of somatic mutations, and can distinguish subtle differences in aging even in cells of the same chronological age. We further compared SCALE with other transcriptomic and methylation "clocks" in data from aging muscle stem cells, Alzheimer's disease, and heterochronic parabiosis. Our results confirm that SCALE is more generalizable and reliable in assessing biological aging in aging-related diseases and rejuvenating interventions. Overall, SCALE represents a valuable advancement in our ability to measure aging accurately, robustly, and interpretably in single cells.
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