自噬
酮体
血管舒张
氧化应激
血管平滑肌
化学
细胞生物学
下调和上调
内分泌学
药理学
内科学
生物
生物化学
新陈代谢
医学
基因
细胞凋亡
平滑肌
作者
Cameron G. McCarthy,Saroj Chakraborty,Gagandeep Singh,Beng San Yeoh,Zachary Schreckenberger,Avinash Singh,Blair Mell,Nicole R. Bearss,Tao Yang,Xi Cheng,Matam Vijay–Kumar,Camilla F Wenceslau,Bina Joe
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2021-10-22
卷期号:6 (20)
被引量:38
标识
DOI:10.1172/jci.insight.149037
摘要
Autophagy has long been associated with longevity, and it is well established that autophagy reverts and prevents vascular deterioration associated with aging and cardiovascular diseases. Currently, our understanding of how autophagy benefits the vasculature is centered on the premise that reduced autophagy leads to the accumulation of cellular debris, resulting in inflammation and oxidative stress, which are then reversed by reconstitution or upregulation of autophagic activity. Evolutionarily, autophagy also functions to mobilize endogenous nutrients in response to starvation. Therefore, we hypothesized that the biosynthesis of the most physiologically abundant ketone body, β-hydroxybutyrate (βHB), would be autophagy dependent and exert vasodilatory effects via its canonical receptor, Gpr109a. To the best of our knowledge, we have revealed for the first time that the biosynthesis of βHB can be impaired by preventing autophagy. Subsequently, βHB caused potent vasodilation via potassium channels but not Gpr109a. Finally, we observed that chronic consumption of a high-salt diet negatively regulates both βHB biosynthesis and hepatic autophagy and that reconstitution of βHB bioavailability prevents high-salt diet-induced endothelial dysfunction. In summary, this work offers an alternative mechanism to the antiinflammatory and antioxidative stress hypothesis of autophagy-dependent vasculoprotection. Furthermore, it reveals a direct mechanism by which ketogenic interventions (e.g., intermittent fasting) improve vascular health.
科研通智能强力驱动
Strongly Powered by AbleSci AI