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Published on: May 26, 2023
Targeting Hsc70-mediated mitochondrial-lipid droplet crosstalk via Ginsenoside Rb2 promotes post-infarction
Ce Cao1, Lili Yang2, Min Wang3
1National Clinical Research Center for Chinese Medicine Cardiology, Beijing Key Laboratory of Chinese Materia Pharmacology, Xiyuan Hospital of China Academy of Chinese Medical Sciences, Beijing 100091, China; Duke-NUS Medical School, Singapore 169857, Singapore.
Abstract:
Inducing adult cardiomyocyte proliferation to repair the infarcted heart remains a major therapeutic challenge. While metabolic reprogramming is known to drive regeneration, the specific organelle-level mechanisms governing this process, particularly the crosstalk between mitochondria and lipid droplets (LDs), remain elusive. Here, we identify Heat Shock Cognate 71 kDa Protein (Hsc70) as a critical physiological "metabolic brake" that maintains adult cardiomyocytes in a terminally differentiated state and suppresses cell cycle re-entry by tethering mitochondria to LDs via Mitofusin 2 (Mfn2). Using Ginsenoside Rb2, a bioactive small molecule identified from a clinically effective formula (Shuangshen Ningxin), we demonstrate that Rb2 directly binds to Hsc70 (KD ≈ 32 µM) and disrupts the Hsc70-Mfn2 interaction. This disruption pharmacologically uncouples the remaining mitochondria-LD contacts to f release this physiological barrier, restores metabolic homeostasis, and reactivates cardiomyocyte proliferation in myocardial infarction (MI) rats. Crucially, these regenerative effects were abrogated by AAV9-mediated Hsc70 overexpression, confirming Hsc70 as the non-redundant therapeutic target. Furthermore, a retrospective analysis of 60 patients treated with the Rb2-containing intervention showed significantly improved cardiac outcomes, highlighting the broad cardioprotective and clinical utility of this therapeutic strategy. Our findings reveal a fundamental mechanism linking organelle dynamics to tissue regeneration and highlight Hsc70 as a druggable target for heart failure treatment.
