Macrophage-Derived GSDMD Plays an Essential Role in Atherosclerosis and Cross Talk Between Macrophages via the Mitochondria-STING-IRF3/NF-κB Axis

Author:

Fan Xiaoxi1ORCID,Han Jibo2ORCID,Zhong Lingfeng1,Zheng Wenyuan3,Shao Ruiyin1,Zhang Yucong1,Shi Si4,Lin Shuang5,Huang Zhouqing1ORCID,Huang Weijian1ORCID,Cai Xueli1ORCID,Ye Bozhi13ORCID

Affiliation:

1. Department of Cardiology and The Key Laboratory of Cardiovascular Disease of Wenzhou, The First Affiliated Hospital, Wenzhou Medical University, Zhejiang, China (X.F., L.Z., R.S., Y.Z., Z.H., W.H., X.C., B.Y.).

2. Department of Cardiology, The Second Affiliated Hospital of Jiaxing University, Zhejiang, China (J.H.).

3. Key Laboratory of Precision Medicine for Atherosclerosis Disease of Zhejiang Province, Department of Cardiology, Affiliated First Hospital of Ningbo University, Zhejiang, China (W.Z., B.Y.).

4. First School of Medicine, Wenzhou Medical University, Zhejiang, China (S.S.).

5. Department of Cardiology, Ningbo Medical Center Li Huili Hospital, Zhejiang, China (S.L.).

Abstract

BACKGROUND: Macrophages play a crucial role in atherosclerotic plaque formation, and the death of macrophages is a vital factor in determining the fate of atherosclerosis. GSDMD (gasdermin D)-mediated pyroptosis is a programmed cell death, characterized by membrane pore formation and inflammatory factor release. METHODS: ApoE −/− and Gsdmd −/− ApoE −/− mice, bone marrow transplantation, and AAV (adeno-associated virus serotype 9)-F4/80-shGSDMD (shRNA-GSDMD) were used to examine the effect of macrophage-derived GSDMD on atherosclerosis. Single-cell RNA sequencing was used to investigate the changing profile of different cellular components and the cellular localization of GSDMD during atherosclerosis. RESULTS: First, we found that GSDMD is activated in human and mouse atherosclerotic plaques and Gsdmd −/− attenuates the atherosclerotic lesion area in high-fat diet–fed ApoE −/− mice. We performed single-cell RNA sequencing of ApoE −/− and Gsdmd −/− ApoE −/− mouse aortas and showed that GSDMD is principally expressed in atherosclerotic macrophages. Using bone marrow transplantation and AAV-F4/80-shGSDMD, we identified the potential role of macrophage-derived GSDMD in aortic pyroptosis and atherosclerotic injuries in vivo. Mechanistically, GSDMD contributes to mitochondrial perforation and mitochondrial DNA leakage and subsequently activates the STING (stimulator of interferon gene)-IRF3 (interferon regulatory factor 3)/NF-κB (nuclear factor kappa B) axis. Meanwhile, GSDMD regulates the STING pathway activation and macrophage migration via cytokine secretion. Inhibition of GSDMD with GSDMD-specific inhibitor GI-Y1 (GSDMD inhibitor Y1) can effectively alleviate the progression of atherosclerosis. CONCLUSIONS: Our study has provided a novel macrophage-derived GSDMD mechanism in the promotion of atherosclerosis and demonstrated that GSDMD can be a potential therapeutic target for atherosclerosis.

Publisher

Ovid Technologies (Wolters Kluwer Health)

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