Arginase 1 drives mitochondrial cristae remodeling and PANoptosis in ischemia/hypoxia-induced vascular dysfunction

IF 40.8 1区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Han She, Jie Zheng, Guozhi Zhao, Yunxia Du, Lei Tan, Zhe-Sheng Chen, Yinyu Wu, Yong Li, Yiyan Liu, Yue Sun, Yi Hu, Deyu Zuo, Qingxiang Mao, Liangming Liu, Tao Li
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Abstract

Ischemic/hypoxic injury significantly damages vascular function, detrimentally impacting patient outcomes. Changes in mitochondrial structure and function are closely associated with ischemia/hypoxia-induced vascular dysfunction. The mechanism of this process remains elusive. Using rat models of ischemia and hypoxic vascular smooth muscle cells (VSMCs), we combined transmission electron microscopy, super-resolution microscopy, and metabolic analysis to analyze the structure and function change of mitochondrial cristae. Multi-omics approaches revealed arginase 1 (Arg1) upregulation in ischemic VSMCs, confirmed by in vivo and in vitro knockout models showing Arg1’s protective effects on mitochondrial cristae, mitochondrial and vascular function, and limited the release of mtDNA. Mechanistically, Arg1 interacting with Mic10 led to mitochondrial cristae remodeling, together with hypoxia-induced VDAC1 lactylation resulting in the opening of MPTP and release of mtDNA of VSMCs. The released mtDNA led to PANoptosis of VSMCs via activation of the cGAS-STING pathway. ChIP-qPCR results demonstrated that lactate-mediated Arg1 up-regulation was due to H3K18la upregulation. VSMCs targeted nano-material PLGA-PEI-siRNA@PM-α-SMA (NP-siArg1) significantly improved vascular dysfunction. This study uncovers a new mechanism of vascular dysfunction following ischemic/hypoxic injury: a damaging positive feedback loop mediated by lactate-regulated Arg1 expression between the nucleus and mitochondria, leading to mitochondria cristae disorder and mtDNA release, culminating in VSMCs PANoptosis. Targeting VSMCs Arg1 inhibition offers a potential therapeutic strategy to alleviate ischemia/hypoxia-induced vascular impairments.

Abstract Image

精氨酸酶1在缺血/缺氧诱导的血管功能障碍中驱动线粒体嵴重塑和PANoptosis
缺血/缺氧损伤显著损害血管功能,对患者预后产生不利影响。线粒体结构和功能的改变与缺血/缺氧诱导的血管功能障碍密切相关。这一过程的机制尚不清楚。采用大鼠缺血缺氧血管平滑肌细胞(VSMCs)模型,结合透射电镜、超分辨显微镜和代谢分析,分析线粒体嵴结构和功能的变化。多组学方法揭示了精氨酸酶1 (Arg1)在缺血性VSMCs中的上调,体内和体外敲除模型证实了Arg1对线粒体嵴、线粒体和血管功能的保护作用,并限制了mtDNA的释放。在机制上,Arg1与Mic10相互作用导致线粒体嵴重塑,同时缺氧诱导的VDAC1乳酸化导致VSMCs MPTP开放和mtDNA释放。释放的mtDNA通过激活cGAS-STING通路导致VSMCs PANoptosis。ChIP-qPCR结果表明,乳酸介导的Arg1上调是由于H3K18la上调所致。VSMCs靶向纳米材料PLGA-PEI-siRNA@PM-α-SMA (NP-siArg1)显著改善血管功能障碍。本研究揭示了缺血/缺氧损伤后血管功能障碍的新机制:乳酸调节的Arg1在细胞核和线粒体之间的表达介导了一个破坏性的正反馈回路,导致线粒体嵴紊乱和mtDNA释放,最终导致VSMCs PANoptosis。针对VSMCs的Arg1抑制提供了一种潜在的治疗策略,以减轻缺血/缺氧引起的血管损伤。
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来源期刊
Signal Transduction and Targeted Therapy
Signal Transduction and Targeted Therapy Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
44.50
自引率
1.50%
发文量
384
审稿时长
5 weeks
期刊介绍: Signal Transduction and Targeted Therapy is an open access journal that focuses on timely publication of cutting-edge discoveries and advancements in basic science and clinical research related to signal transduction and targeted therapy. Scope: The journal covers research on major human diseases, including, but not limited to: Cancer,Cardiovascular diseases,Autoimmune diseases,Nervous system diseases.
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