Yasuaki Ikuno, Koichiro Watanabe, Yukie Kande, Yumi Kakeya, Shinsuke Ikeno, Ayano Narumoto, Tomoki Hayashi, Kahori Minami, Kasumi Nobuhiro, Dai Ihara, Yo Mabuchi, Shiho Nakamura, Noriki Fujimoto, Hideyuki Okano, Hayato Naka‐Kaneda
Abstract Stem cell (SC) aging is implicated in tissue dysfunction and organismal aging. However, the molecular basis of aging shared across diverse adult SC types remains unclear. Here, we identify the transcription factor Lef1 , the splicing regulator Srsf3 , and a subset of DNA damage response microRNAs (DDR-miRs) as a common molecular axis underlying SC aging. Lef1 was the most consistently downregulated transcription factor during aging, common to mesenchymal stem/stromal cells (MSCs) and hematopoietic stem/progenitor cells (HSCs), and this reduction was also observed in other tissue SC types in both mice and humans based on reanalysis of public RNA-seq datasets. In young MSCs, Lef1 knockdown reproduced a miRNA expression profile similar to that of aged MSCs. Using in vitro reporter assays for mirtron biogenesis, a non-canonical miRNA biogenesis process, we identified age-associated cytoplasmic translocation and functional attenuation of Srsf3 as the causal molecular alteration responsible for impaired miRNA biogenesis under reduced Wnt signaling. Consistent with these in vitro findings, DDR capacity was reduced in aged SCs in vivo. Stem cell-specific Lef1 deletion in either intestinal or epidermal stem cells in young mice induced premature DDR impairment and elicited inflammatory and senescence-like phenotypes in remote organs, including the brain, skin, and kidney. These findings define the decay of the Lef1 - Srsf3 -miRNA axis as a core molecular alteration underlying SC aging and reveal that local SC aging may contribute to organismal aging.