下调和上调
衰老
病变
癌症研究
细胞生物学
化学
医学
生物
病理
生物化学
基因
作者
Sivareddy Kotla,Jonghae Lee,Kyung Ae Ko,Weiqing Chen,Venkata Subrahman K Samanthapudi,O.N. Hoang,Gilbert Mejia,Shengyu Li,Keri Schadler,Luis Rivera,Masaki Imanishi,Kay Carlene Tavares Samperio,Jung Hyun Kim,Keila Carolina Ostos Mendoza,Karla N. Mariscal-Reyes,Anita Deswal,John P. Cooke,Keigi Fujiwara,Nicolas L. Palaskas,Efstratios Koutroumpakis
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-06-21
标识
DOI:10.1101/2025.06.19.660635
摘要
Under normal physiological conditions, LATS1/2 and Lamin A work together to suppress CD38 expression. Lamin A binds directly to the CD38 promoter to repress transcription, and LATS1/2 interact with Lamin A to reinforce this suppression. This collaboration helps maintain low CD38 activity and preserves cellular NAD⁺ levels. However, under disturbed flow (d-flow), both LATS1/2 and Lamin A are downregulated. The loss of this dual repression leads to increased CD38 NADase expression. Elevated CD38 accelerates NAD⁺ consumption, causing NAD⁺ depletion-a hallmark of cellular senescence. Reduced NAD⁺ disrupts key metabolic and stress-response pathways, contributing to the onset of the senescent state. At the same time, CD38 suppresses sulfite oxidase (SUOX), leading to sulfite accumulation and mitochondrial redox imbalance. This shift activates the reverse mode of mitochondrial Complex V, which decreases ATP production and increases mitochondrial ROS, intensifying metabolic and oxidative stress in endothelial cells (ECs). In response, ECs compensate by upregulating succinate dehydrogenase (SDH), enhancing TCA cycle activity and glutamate metabolism. This metabolic adaptation provides the biosynthetic building blocks needed for cell growth and proliferation. As a result, ECs adopt a paradoxical phenotype: they show classical features of stress-induced senescence (such as NAD⁺ depletion, oxidative stress, and cell cycle arrest signals), while simultaneously undergoing metabolic activation and proliferation, also mediated by YAP. This defines a non-canonical endothelial program known as senescence-associated stemness (SAS), characterized by the formation of abnormal, proliferative, yet fragile neovessels. These dysfunctional vessels contribute to atherothrombosis, setting this process apart from the more stable lesions typical of conventional atherosclerosis.
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