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Epigenetic erosion of H4K20me1 induced by inflammation drives aged stem cell ferroptosis.
Blanc, Romeo S; Shah, Nidhi; Salama, Noah A S; Meng, Fanju W; Mousaei, Alireza; Yang, Benjamin A; Aguilar, Carlos A; Chakkalakal, Joe V; Onukwufor, John O; Murphy, Patrick J; Calvi, Laura; Dirksen, Robert.
Afiliación
  • Blanc RS; University of Rochester.
  • Shah N; University of Rochester.
  • Salama NAS; University of Rochester.
  • Meng FW; University of Rochester.
  • Mousaei A; University of Rochester.
  • Yang BA; Altos Lab.
  • Aguilar CA; University of Michigan.
  • Chakkalakal JV; Duke University.
  • Onukwufor JO; University of Rochester.
  • Murphy PJ; University of Rochester.
  • Calvi L; university of rochester.
  • Dirksen R; University of Rochester.
Res Sq ; 2024 Mar 15.
Article en En | MEDLINE | ID: mdl-38410478
ABSTRACT
Aging is associated with a decline in stem cell functionality and number across the organism. In this study, we aimed to further unravel Muscle Stem Cells (MuSCs) aging by assessing how systemic factors influence MuSC fate decisions through long-term epigenetic landscape remodelling. As aging is intricately linked to a pro-inflammatory shift, we studied the epigenetic effects of inflammatory signals in MuSCs and measured decreased H4K20me1 levels. This loss disrupts MuSC quiescence, largely through epigenetic silencing of Notch target genes. In the setting of inflammatory signals or aging, the lack of Kmt5a and the subsequent absence of de novoH4K20me1 culminate in cell death by ferroptosis. Aged MuSCs manifest abnormal iron metabolism and reduced Gpx4 levels, resulting in the accumulation of intracellular iron, increased reactive oxygen species, genomic instability, and lipid peroxidation. We showed that ferroptosis is the predominant mode of cell death in aged MuSCs, with remarkably high levels of lipid peroxidation; a phenomenon we also observed in aged hematopoietic stem cells. Implementing preventative strategies to inhibit systemic inflammation prevented aged MuSC ferroptosis, preserving their numbers and regenerative capabilities. This intervention significantly enhanced aged muscle regeneration and strength recovery and extended both lifespan and healthspan in mice. This study delineates a previously underappreciated fate trajectory for stem cell aging, and offers meaningful insights into the treatment of age-related disorders.

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Res Sq Año: 2024 Tipo del documento: Article

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Res Sq Año: 2024 Tipo del documento: Article