RRC ID 86391
著者 Mikawa T, Kameda M, Ikari S, Shibata E, Liu S, Miyagawa S, Ono K, Ito T, Yoshizawa A, Sugimoto M, Shibuya S, Shimizu T, Almunia J, Ogiso N, Revêchon G, Palazzo A, Bernard D, Kanda H, Soga T, Takubo K, Morioka S, Sasaki J, Sasaki T, Itamoto A, Fujii T, Seno H, Inagaki N, Kondoh H.
タイトル Abrogation of aberrant glycolytic interactions eliminates senescent cells and alleviates aging-related dysfunctions.
ジャーナル Signal Transduct Target Ther
Abstract Cellular senescence is deeply involved in physiological homeostasis, development, tissue repair, aging, and diseases. Senescent cells (SnCs) accumulate in aged tissues and exert deleterious effects by secreting proinflammatory molecules that contribute to chronic inflammation and aging-related diseases. We revealed that an aberrant interaction between glycolytic PGAM1 and Chk1 kinase is augmented in SnCs associated with increased glycolysis, whose byproduct, lactate, promotes this binding in a noncell autonomous manner. The pseudo-Warburg effect of SnCs with enhanced PPP (pentose phosphate pathway) activity is maintained by HIF-2α phosphorylation by Chk1 and subsequent upregulation of glycolytic enzymes, creating a vicious cycle reprogramming the glycolytic pathway in SnCs. HIF-2α also activates FoxM1 expression, which transcriptionally suppresses proapoptotic profiles, including BIM, and upregulates DNA repair machineries in SnCs. FoxM1 thus supports the genomic integrity and survival capacity of SnCs during their glycolytic changes. Chemical abrogation of PGAM1-Chk1 binding reverts these phenotypes and eliminates SnCs through senolysis. Inhibition of the PGAM1-Chk1 interaction improves physiological parameters during aging and inhibits lung fibrosis in mouse models. Our study highlights a novel pathway contributing to the metabolic reprogramming of SnCs and how the use of a new senolytic molecule that targets the PGAM-Chk1 interaction creates a specific vulnerability of those cells to potentially fight age-related diseases.
巻・号 10(1)
ページ 402
公開日 2025-12-15
DOI 10.1038/s41392-025-02502-6
PII 10.1038/s41392-025-02502-6
PMID 41392167
PMC PMC12702999
MeSH Aging* / genetics Aging* / metabolism Aging* / pathology Animals Basic Helix-Loop-Helix Transcription Factors / genetics Cellular Senescence* / genetics Checkpoint Kinase 1* / genetics Checkpoint Kinase 1* / metabolism Forkhead Box Protein M1* / genetics Glycolysis* / genetics Humans Mice
リソース情報
加齢マウス
ヒト・動物細胞 HUE102(RCB5489)