磷酸化调控的 HIP-55 动态相分离可预防心力衰竭

IF 35.5 1区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Circulation Pub Date : 2024-09-17 Epub Date: 2024-02-08 DOI:10.1161/CIRCULATIONAHA.123.067519
Yunqi Jiang, Jinge Gu, Xiaodou Niu, Jiaojiao Hu, Yongzhen Zhang, Dan Li, Yida Tang, Cong Liu, Zijian Li
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引用次数: 0

摘要

背景:心力衰竭(HF)是许多心血管疾病的终末阶段,与低存活率和严重的经济负担相关。心力衰竭的发病机制,尤其是分子机制与新理论的结合,仍是一个未知数。我们证明,磷酸化调控的 HIP-55(造血祖细胞激酶 1-55 kDa 相互作用蛋白)动态液相分离可预防高房颤:方法:采用光漂白后荧光恢复试验、微分干涉对比分析、牵引试验、免疫荧光和免疫组化分析来研究HIP-55在体内和体外的液-液相分离能力及其动态调控。用遗传性缺失 HIP-55 的小鼠和心脏特异性过表达 HIP-55 的小鼠来研究 HIP-55 在 β 肾上腺素能受体过度激活诱导的高房颤动中的作用。突变分析和小鼠特异性磷酸化抗性位点诱变被用来确定磷酸化调控的HIP-55动态液-液相分离在HF中的作用:结果:基因缺失HIP-55会加重高房颤,而心脏特异性过表达HIP-55会显著缓解体内高房颤。HIP-55具有很强的相分离能力。HIP-55的相分离受AKT介导的S269和T291位点磷酸化的动态调控,磷酸化失败会导致HIP-55形成异常聚集,从而影响其动态相分离。长时间的交感神经过度激活应激导致 HIP-55 S269 和 T291 磷酸化减少、相分离失调以及随后的 HIP55 聚集形成。此外,我们还证明了 HIP-55 动态相分离在抑制 β 肾上腺素能受体介导的 P38/MAPK(丝裂原活化蛋白激酶)信号通路过度激活方面的重要作用。磷酸化缺陷的HIP-55突变会发生大量相分离并形成不溶性的聚集体,从而失去对高频的保护活性:我们的研究揭示了磷酸化调控的 HIP-55 动态相分离对交感/肾上腺素能系统介导的心力衰竭的保护作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phosphorylation-Regulated Dynamic Phase Separation of HIP-55 Protects Against Heart Failure.

Background: Heart failure (HF), which is the terminal stage of many cardiovascular diseases, is associated with low survival rates and a severe financial burden. The mechanisms, especially the molecular mechanism combined with new theories, underlying the pathogenesis of HF remain elusive. We demonstrate that phosphorylation-regulated dynamic liquid-liquid phase separation of HIP-55 (hematopoietic progenitor kinase 1-interacting protein of 55 kDa) protects against HF.

Methods: Fluorescence recovery after photobleaching assay, differential interference contrast analysis, pull-down assay, immunofluorescence, and immunohistochemical analysis were used to investigate the liquid-liquid phase separation capacity of HIP-55 and its dynamic regulation in vivo and in vitro. Mice with genetic deletion of HIP-55 and mice with cardiac-specific overexpression of HIP-55 were used to examine the role of HIP-55 on β-adrenergic receptor hyperactivation-induced HF. Mutation analysis and mice with specific phospho-resistant site mutagenesis were used to identify the role of phosphorylation-regulated dynamic liquid-liquid phase separation of HIP-55 in HF.

Results: Genetic deletion of HIP-55 aggravated HF, whereas cardiac-specific overexpression of HIP-55 significantly alleviated HF in vivo. HIP-55 possesses a strong capacity for phase separation. Phase separation of HIP-55 is dynamically regulated by AKT-mediated phosphorylation at S269 and T291 sites, failure of which leads to impairment of HIP-55 dynamic phase separation by formation of abnormal aggregation. Prolonged sympathetic hyperactivation stress induced decreased phosphorylation of HIP-55 S269 and T291, dysregulated phase separation, and subsequent aggregate formation of HIP55. Moreover, we demonstrated the important role of dynamic phase separation of HIP-55 in inhibiting hyperactivation of the β-adrenergic receptor-mediated P38/MAPK (mitogen-activated protein kinase) signaling pathway. A phosphorylation-deficient HIP-55 mutation, which undergoes massive phase separation and forms insoluble aggregates, loses the protective activity against HF.

Conclusions: Our work reveals that the phosphorylation-regulated dynamic phase separation of HIP-55 protects against sympathetic/adrenergic system-mediated heart failure.

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来源期刊
Circulation
Circulation 医学-外周血管病
CiteScore
45.70
自引率
2.10%
发文量
1473
审稿时长
2 months
期刊介绍: Circulation is a platform that publishes a diverse range of content related to cardiovascular health and disease. This includes original research manuscripts, review articles, and other contributions spanning observational studies, clinical trials, epidemiology, health services, outcomes studies, and advancements in basic and translational research. The journal serves as a vital resource for professionals and researchers in the field of cardiovascular health, providing a comprehensive platform for disseminating knowledge and fostering advancements in the understanding and management of cardiovascular issues.
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