Cerebral endothelial 3-mercaptopyruvate sulfurtransferase improves ischemia-induced cognitive impairment via interacting with protein phosphatase 2A

IF 14.6 1区 医学 Q1 PHARMACOLOGY & PHARMACY Acta Pharmaceutica Sinica. B Pub Date : 2025-01-01 Epub Date: 2024-11-26 DOI:10.1016/j.apsb.2024.11.015
Li Zhu , Yi Huang , Jing Jin , Rongjun Zou , Rui Zuo , Yong Luo , Ziqing Song , Linfeng Dai , Minyi Zhang , Qiuhe Chen , Yunting Wang , Wei Wang , Rongrong He , Yang Chen
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Abstract

The catalytic activity of 3-mercaptopyruvate (3MP) sulfurtransferase (MPST) converts 3MP to hydrogen sulfide (H2S). However, the regulatory mechanisms governing MPST and its impact on the brain remain largely unexplored. Our study reveals the neuroprotective role of endothelial MPST-generated H2S, regulated by protein phosphatase 2A (PP2A). Bioinformatics analysis and RNA sequencing demonstrated that endothelial PP2A is associated with neurodegenerative disease pathways. Cerebral ischemic mice exhibited significant inactivation of endothelial PP2A, evidenced by the reduction of PP2Acα in the brain endothelium. Mice with endothelium-specific null PP2A (PP2AEC-cKO) exhibited neuronal loss, cognitive dysfunction, and long-term potentiation deficits. Postnatal inactivation of endothelial PP2A also contributes to cognitive dysfunction and neuronal loss. However, regaining endothelial PP2A activity by overexpressing Ppp2ca rescued neuronal dysfunction. Mechanistically, PP2A deficiency is intricately linked to the MPST–H2S signaling pathway. A robust reduction in endothelial MPST-dependent H2S production followed PP2A deficiency. Exogenous H2S treatment and AAV-mediated overexpression of MPST in brain endothelial cells significantly mitigated neuronal dysfunction in PP2AEC-cKO mice. Furthermore, PP2A deficiency promotes an increase in calcium influx and calpain2 phosphorylation, subsequently leading to MPST degradation. The PP2A activator (FTY720) and MPST activator (3MP sodium) both remarkably restored endothelial MPST-dependent H2S production, subsequently rescuing ischemia-induced neurological deficits. In conclusion, our study demonstrates that endothelial PP2A deficiency leads to MPST degradation by activating calpain2, thus damaging neuronal function.

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脑内皮3-巯基丙酮酸硫转移酶通过与蛋白磷酸酶2A相互作用改善缺血诱导的认知障碍
3-巯基丙酮酸(3MP)硫转移酶(MPST)的催化活性将3MP转化为硫化氢(H2S)。然而,控制MPST的调节机制及其对大脑的影响在很大程度上仍未被探索。我们的研究揭示了内皮细胞mpst产生的H2S的神经保护作用,由蛋白磷酸酶2A (PP2A)调节。生物信息学分析和RNA测序表明内皮PP2A与神经退行性疾病通路相关。脑缺血小鼠表现出明显的内皮细胞PP2A失活,其证据是脑内皮细胞PP2Acα的减少。具有内皮特异性缺失PP2A (PP2AEC-cKO)的小鼠表现出神经元丧失、认知功能障碍和长期增强缺陷。出生后内皮细胞PP2A的失活也会导致认知功能障碍和神经元丢失。然而,通过过表达Ppp2ca来恢复内皮细胞的PP2A活性可以挽救神经元功能障碍。从机制上讲,PP2A缺陷与MPST-H2S信号通路有着复杂的联系。PP2A缺乏后,内皮细胞mpst依赖性H2S生成显著减少。外源性H2S处理和aav介导的脑内皮细胞中MPST的过表达可显著减轻PP2AEC-cKO小鼠的神经元功能障碍。此外,PP2A缺乏促进钙内流和calpain2磷酸化的增加,随后导致MPST降解。PP2A激活剂(FTY720)和MPST激活剂(3MP钠)都能显著恢复内皮细胞中MPST依赖性H2S的产生,随后挽救缺血诱导的神经功能缺损。总之,我们的研究表明内皮细胞PP2A缺乏通过激活calpain2导致MPST降解,从而损害神经元功能。
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来源期刊
Acta Pharmaceutica Sinica. B
Acta Pharmaceutica Sinica. B Pharmacology, Toxicology and Pharmaceutics-General Pharmacology, Toxicology and Pharmaceutics
CiteScore
22.40
自引率
5.50%
发文量
1051
审稿时长
19 weeks
期刊介绍: The Journal of the Institute of Materia Medica, Chinese Academy of Medical Sciences, and the Chinese Pharmaceutical Association oversees the peer review process for Acta Pharmaceutica Sinica. B (APSB). Published monthly in English, APSB is dedicated to disseminating significant original research articles, rapid communications, and high-quality reviews that highlight recent advances across various pharmaceutical sciences domains. These encompass pharmacology, pharmaceutics, medicinal chemistry, natural products, pharmacognosy, pharmaceutical analysis, and pharmacokinetics. A part of the Acta Pharmaceutica Sinica series, established in 1953 and indexed in prominent databases like Chemical Abstracts, Index Medicus, SciFinder Scholar, Biological Abstracts, International Pharmaceutical Abstracts, Cambridge Scientific Abstracts, and Current Bibliography on Science and Technology, APSB is sponsored by the Institute of Materia Medica, Chinese Academy of Medical Sciences, and the Chinese Pharmaceutical Association. Its production and hosting are facilitated by Elsevier B.V. This collaborative effort ensures APSB's commitment to delivering valuable contributions to the pharmaceutical sciences community.
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