自噬
心脏纤维化
下调和上调
纤维化
舒张期
生物
酮发生
心力衰竭
酮体
内科学
心肌纤维化
内分泌学
心脏功能不全
磷酸化
PI3K/AKT/mTOR通路
糖酵解
癌症研究
心肌细胞
病态的
药理学
细胞生物学
心输出量
医学
β氧化
细胞内
作者
Ziwen Wang,Ziyuan Zhang,Zheng Ping,Xin Zheng,Ting Wang,Zhongyong Jiang,Ge Yang,Xiaoli Zhang,Zhaochuan Liu,Bo Wu,Haimei Sun,Shu Yang,Deshan Zhou,Tingyi Sun,Xuebin Cao
出处
期刊:Autophagy
[Taylor & Francis]
日期:2026-07-30
卷期号:: 1-27
标识
DOI:10.1080/15548627.2026.2711595
摘要
Cardiac fibrosis, a major pathological hallmark of aging that leads to heart failure, is characterized by excessive collagen deposition. Our knowledge of what sustains collagen synthesis in the aging heart is still very preliminary. Here, we uncover a central role for chaperone-mediated autophagy (CMA), a selective lysosomal degradation pathway, in this process. We demonstrate that CMA is suppressed in the aging heart, which promotes collagen overproduction in fibroblasts, whereas enhancing CMA activity ameliorates fibrosis and diastolic dysfunction. Mechanistically, we identify SHMT2 (serine hydroxymethyltransferase 2) as a CMA substrate whose accumulation with aging drives collagen synthesis by increasing glycine availability. Integrative omics revealed a systemic downregulation of the ketone body β-hydroxybutyrate (BHB) in aged mice. BHB supplementation – via a cyclic ketogenic diet – restored CMA, attenuated fibrosis, and improved cardiac function. This recovery was mediated through BHB-induced activation of the HCAR2 receptor and subsequent phosphorylation of HSPA8/HSC70, which systemically reactivates the CMA machinery. Furthermore, we show that Lycium barbarum polysaccharide (LBP) rejuvenates hepatic ketogenesis and mimics the benefits of BHB. Our findings establish a BHB-HCAR2-CMA-SHMT2 regulatory axis as a critical mechanism driving aging-related cardiac fibrosis and highlight nutritional strategies that target CMA as promising therapies against cardiac aging.
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