Notch activation shifts the fate decision of senescent progenitors toward myofibrogenesis in human adipose tissue.
Nathalie BouletAnaïs BriotValentin JargaudDavid EstèveAnne RémauryChloé BellesPénélope VianaJessica FontaineLucie MurphyCatherine DéonMarie GuillemotCatherine PechYaligara VeeranagoudaMichel DidierPauline DecaunesEtienne MouiselChristian CarpénéJason S IacovoniAlexia Zakaroff-GirardJean-Louis GrolleauJean GalitzkySéverine LedouxJean-Claude GuillemotAnne BouloumiéPublished in: Aging cell (2023)
Senescence is a key event in the impairment of adipose tissue (AT) function with obesity and aging but the underlying molecular and cellular players remain to be fully defined, particularly with respect to the human AT progenitors. We have found distinct profiles of senescent progenitors based on AT location between stroma from visceral versus subcutaneous AT. In addition to flow cytometry, we characterized the location differences with transcriptomic and proteomic approaches, uncovering the genes and developmental pathways that are underlying replicative senescence. We identified key components to include INBHA as well as SFRP4 and GREM1, antagonists for the WNT and BMP pathways, in the senescence-associated secretory phenotype and NOTCH3 in the senescence-associated intrinsic phenotype. Notch activation in AT progenitors inhibits adipogenesis and promotes myofibrogenesis independently of TGFβ. In addition, we demonstrate that NOTCH3 is enriched in the premyofibroblast progenitor subset, which preferentially accumulates in the visceral AT of patients with an early obesity trajectory. Herein, we reveal that NOTCH3 plays a role in the balance of progenitor fate determination preferring myofibrogenesis at the expense of adipogenesis. Progenitor NOTCH3 may constitute a tool to monitor replicative senescence and to limit AT dysfunction in obesity and aging.
Keyphrases
- endothelial cells
- insulin resistance
- adipose tissue
- high fat diet induced
- cell proliferation
- dna damage
- metabolic syndrome
- type diabetes
- weight loss
- flow cytometry
- stress induced
- high fat diet
- weight gain
- skeletal muscle
- genome wide
- oxidative stress
- mesenchymal stem cells
- stem cells
- dna methylation
- gene expression
- induced pluripotent stem cells
- pluripotent stem cells
- body mass index
- high resolution
- decision making
- signaling pathway
- single molecule
- mass spectrometry
- transforming growth factor
- physical activity