Targeting Mitochondria-Inflammation Circuit by β-Hydroxybutyrate Mitigates HFpEF

Author:

Deng Yan12,Xie Maodi12,Li Qian12,Xu Xuewen3,Ou Wei1ORCID,Zhang Yabing12,Xiao Haitao3,Yu Hai12,Zheng Yanyi12,Liang Yu12,Jiang Chunling12,Chen Guo12,Du Dan1,Zheng Wen1,Wang Shisheng1,Gong Meng1,Chen Yaohui4,Tian Rong5ORCID,Li Tao12ORCID

Affiliation:

1. Laboratory of Mitochondrial and Metabolism, Department of Anesthesiology, National Clinical Research Center for Geriatrics (Y.D., M.X., Q.L., W.O., Y. Zhang, H.Y., Y. Zheng, Y.L., C.J., G.C., D.D., W.Z., S.W., M.G., T.L.), West China Hospital of Sichuan University, Chengdu.

2. Laboratory of Anesthesia and Critical Care Medicine, Translational Neuroscience Center (Y.D., M.X., Q.L., W.O., Y. Zhang, H.Y., Y. Zheng, Y.L., C.J., G.C., T.L.), West China Hospital of Sichuan University, Chengdu.

3. Department of Burn and Plastic Surgery (X.X., H.X.), West China Hospital of Sichuan University, Chengdu.

4. Chest Oncology Institute (Y.C.), West China Hospital of Sichuan University, Chengdu.

5. Department of Anesthesiology and Pain Medicine, Mitochondria and Metabolism Center, University of Washington, Seattle (R.T.).

Abstract

Rationale: Over 50% of patients with heart failure have preserved ejection fraction (HFpEF), rather than reduced ejection fraction. Complexity of its pathophysiology and the lack of animal models hamper the development of effective therapy for HFpEF. Objective: This study was designed to investigate the metabolic mechanisms of HFpEF and test therapeutic interventions using a novel animal model. Methods and Results: By combining the age, long-term high-fat diet, and desoxycorticosterone pivalate challenge in a mouse model, we were able to recapture the myriad features of HFpEF. In these mice, mitochondrial hyperacetylation exacerbated while increasing ketone body availability rescued the phenotypes. The HFpEF mice exhibited overproduction of IL (interleukin)-1β/IL-18 and tissue fibrosis due to increased assembly of NLPR3 inflammasome on hyperacetylated mitochondria. Increasing β-hydroxybutyrate level attenuated NLPR3 inflammasome formation and antagonized proinflammatory cytokine–triggered mitochondrial dysfunction and fibrosis. Moreover, β-hydroxybutyrate downregulated the acetyl-CoA pool and mitochondrial acetylation, partially via activation of CS (citrate synthase) and inhibition of fatty acid uptake. Conclusions: Therefore, we identify the interplay of mitochondrial hyperacetylation and inflammation as a key driver in HFpEF pathogenesis, which can be ameliorated by promoting β-hydroxybutyrate abundance.

Funder

National Natural Science Foundation of China

MOST | National Key Research and Development Program of China Stem Cell and Translational Research

1.3.5 Project for Disciplines of Excellence, West China Hospital, Sichuan University

Innovation Spark Project of Sichuan University

Key Research and Development Program of Sichuan Province

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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