Novel role for caspase 1 inhibitor VX765 in suppressing NLRP3 inflammasome assembly and atherosclerosis via promoting mitophagy and efferocytosis

炎症体 传出细胞增多 粒体自噬 上睑下垂 细胞生物学 自噬 帕金 半胱氨酸蛋白酶1 炎症 百里香醌 线粒体 程序性细胞死亡 生物 癌症研究 化学 细胞凋亡 免疫学 医学 巨噬细胞 生物化学 疾病 内科学 帕金森病 抗氧化剂 体外
作者
Ying Jin,Yao Liu,Lei Xu,Jie Xu,Yulian Xiong,Yazhi Peng,Ke Ding,Shuang Zheng,Nan Yang,Zemei Zhang,Lin Li,Li Tan,Hongxian Song,Jing Fu
出处
期刊:Cell Death and Disease [Springer Nature]
卷期号:13 (5) 被引量:23
标识
DOI:10.1038/s41419-022-04966-8
摘要

Atherosclerosis is a maladaptive chronic inflammatory disease, which remains the leading cause of death worldwide. The NLRP3 inflammasome constitutes a major driver of atherosclerosis, yet the mechanism of action is poorly understood. Mitochondrial dysfunction is essential for NLRP3 inflammasome activation. However, whether activated NLRP3 inflammasome exacerbates mitochondrial dysfunction remains to be further elucidated. Herein, we sought to address these issues applying VX765, a well-established inhibitor of caspase 1. VX765 robustly restrains caspase 1-mediated interleukin-1β production and gasdermin D processing. Our study assigned VX765 a novel role in antagonizing NLRP3 inflammasome assembly and activation. VX765 mitigates mitochondrial damage induced by activated NLRP3 inflammasome, as evidenced by decreased mitochondrial ROS production and cytosolic release of mitochondrial DNA. VX765 blunts caspase 1-dependent cleavage and promotes mitochondrial recruitment and phosphorylation of Parkin, a key mitophagy regulator. Functionally, VX765 facilitates mitophagy, efferocytosis and M2 polarization of macrophages. It also impedes foam cell formation, migration and pyroptosis of macrophages. VX765 boosts autophagy, promotes efferocytosis, and alleviates vascular inflammation and atherosclerosis in both ApoE-/- and Ldlr-/- mice. However, these effects of VX765 were abrogated upon ablation of Nlrp3 in ApoE-/- mice. This work provides mechanistic insights into NLRP3 inflammasome assembly and this inflammasome in dictating atherosclerosis. This study highlights that manipulation of caspase 1 paves a new avenue to treatment of atherosclerotic cardiovascular disease.
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