Reprogrammed Propionate Metabolism Alters Redox-Dependent Aldosterone Production
Min Sun, Maoting Gao, Yuqing Liu, Zhiqing Xia, L Q Ma, Naipeng Shi, Yongjie Zhang, Shanliang Sun 等 15 位
First Affiliated Hospital of Wannan Medical College The Affiliated Yongchuan Hospital of Chongqing Medical University Chongqing Medical University Northern Jiangsu People's Hospital
内容与影响
BACKGROUND: Metabolic reprogramming is increasingly recognized as a key driver of endocrine tumor biology, yet how dysregulated metabolism promotes aldosterone excess in aldosterone-producing adenomas remains largely unclear. METHODS: Multiomics profiling of human adrenal and blood specimens was performed to identify metabolic reprogramming. Dysregulated genes and accumulation of intermediates in the propionate metabolism were validated in aldosterone-producing adenomas. Functional effects on aldosterone production were assessed in adrenocortical cells and mice. Key downstream molecules and pathways were examined through transcriptomics, mass spectrometry, and targeted functional assays. RESULTS: Aldosterone-producing adenomas exhibited reprogrammed propionate metabolism and accumulation of its byproduct methylmalonic acid, associated with upregulation of the upstream enzyme PCCA (propionyl-CoA carboxylase subunit A). In adrenocortical cells, PCCA overexpression increased CYP11B2 (aldosterone synthase) expression and aldosterone production, while its silencing had the opposite effects. In both adrenocortical cells and female mouse adrenals, methylmalonic acid promoted CYP11B2 expression and aldosterone production. Mechanistically, methylmalonic acid elevated reactive oxygen species, which triggered S -glutathionylation modification of the L-type calcium channel Ca v 1.2 at cysteines 106 and 621, as confirmed by mass spectrometry and site-directed mutagenesis. This redox-dependent modification enhanced Ca v 1.2 plasma membrane expression and intracellular calcium concentrations, thereby activating calcium/calmodulin signaling, upregulating CYP11B2 expression, and driving aldosterone production. CONCLUSIONS: These findings identify a methylmalonic acid-oxidative stress-Ca v 1.2 S -glutathionylation axis that links metabolic rewiring to aldosterone production, uncovering potential therapeutic opportunities targeting redox-dependent metabolic signaling in primary aldosteronism.
逐年被引趋势
暂无年度引用数据
关键指标
同类平均 = 1
同领域 · 同年份 · 同类型
Google Scholar 与 OpenAlex 的被引统计范围不同,数值存在差异属正常。
AI 辅助阅读
依据:摘要
回答优先基于摘要、文献信息与可获取全文;依据不足时会明确说明。
学术脉络
学科主题
生物医学Hormonal Regulation and Hypertension
Adrenal and Paraganglionic Tumors · Pharmacogenetics and Drug Metabolism
参考文献 46
此处列出前 3 条