心肌保护
心力衰竭
分解代谢
内科学
孟德尔随机化
一氧化氮
血管阻力
药理学
化学
内分泌学
血压
心肌梗塞
心脏病学
生物
医学
生物化学
新陈代谢
基因型
基因
遗传变异
作者
Danielle Murashige,Jae Woo Jung,Michael D. Neinast,Michael G. Levin,Qingwei Chu,Jonathan P. Lambert,Joanne F. Garbincius,Boa Kim,Atsushi Hoshino,Íngrid Martí-Pàmies,Kendra S. McDaid,Swapnil V. Shewale,Emily Flam,Steven Yang,Emilia Roberts,Li Li,Michael P. Morley,Kenneth Bedi,Matthew C. Hyman,David S. Frankel
出处
期刊:Cell Metabolism
[Cell Press]
日期:2022-10-11
卷期号:34 (11): 1749-1764.e7
被引量:94
标识
DOI:10.1016/j.cmet.2022.09.008
摘要
Pharmacologic activation of branched-chain amino acid (BCAA) catabolism is protective in models of heart failure (HF). How protection occurs remains unclear, although a causative block in cardiac BCAA oxidation is widely assumed. Here, we use in vivo isotope infusions to show that cardiac BCAA oxidation in fact increases, rather than decreases, in HF. Moreover, cardiac-specific activation of BCAA oxidation does not protect from HF even though systemic activation does. Lowering plasma and cardiac BCAAs also fails to confer significant protection, suggesting alternative mechanisms of protection. Surprisingly, activation of BCAA catabolism lowers blood pressure (BP), a known cardioprotective mechanism. BP lowering occurred independently of nitric oxide and reflected vascular resistance to adrenergic constriction. Mendelian randomization studies revealed that elevated plasma BCAAs portend higher BP in humans. Together, these data indicate that BCAA oxidation lowers vascular resistance, perhaps in part explaining cardioprotection in HF that is not mediated directly in cardiomyocytes.
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