心脏分泌HSP90α加重压力过载、心肌肥厚和心力衰竭。

IF 10.7 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Le Pan , Chenxing Huang , Xuejuan Jin , Jian Wu , Kejia Jin , Jingyi Lin , Ying Wang , Jianxuan Li , Chao Yin , Xiang Wang , Lei Zhang , Guoping Zhang , Hangming Dong , Junli Guo , Issei Komuro , Yuxiang Dai , Yunzeng Zou , Hui Gong
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引用次数: 0

摘要

由压力过载引发的持续心肌肥厚或左心室肥厚(LVH)与不良心血管结局密切相关。本研究在压力过载小鼠模型中研究了高血压或主动脉瓣狭窄(AS)患者血清HSP90α (HSP90亚型)水平与LVH的临床关系,并探讨了其潜在机制。我们通过主动脉横切面缩窄(TAC)建立了小鼠压力过载模型。与对照组相比,高血压或AS患者血清HSP90α水平升高,且与LVH呈正相关。同样,阻塞性肥厚性心肌病(HCM)患者和tac后小鼠的心脏组织中HSP90α水平升高。TAC诱导心肌细胞和心脏成纤维细胞HSP90α的表达和分泌增强。在压力过载下,敲低HSP90α或阻断细胞外HSP90α (eHSP90α)可通过抑制β-catenin/TCF7信号来减轻心脏肥厚和功能障碍。进一步分析发现,eHSP90α与N-cadherin的EC1-EC2区相互作用,激活β-catenin,增强TCF7对肥厚基因的转录,导致压力过载下心脏肥厚和功能障碍。这些发现提示靶向hsp90 α-启动信号通路治疗压力过载下心脏肥厚和心力衰竭的治疗潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cardiac secreted HSP90α exacerbates pressure overload myocardial hypertrophy and heart failure

Cardiac secreted HSP90α exacerbates pressure overload myocardial hypertrophy and heart failure
Sustained myocardial hypertrophy or left ventricular hypertrophy (LVH) triggered by pressure overload is strongly linked to adverse cardiovascular outcomes. Here, we investigated the clinical relationship between serum HSP90α (an isoform of HSP90) levels and LVH in patients with hypertension or aortic stenosis (AS) and explored underlying mechanisms in pressure overload mouse model. We built a pressure overload mouse model via transverse aortic constriction (TAC). Compared to controls, elevated serum HSP90α levels were observed in patients with hypertension or AS, and the levels positively correlated with LVH. Similarly, HSP90α levels increased in heart tissues from patients with obstructive hypertrophic cardiomyopathy (HCM), and in mice post-TAC. TAC induced the enhanced cardiac expression and secretion of HSP90α from cardiomyocytes and cardiac fibroblasts. Knockdown of HSP90α or blockade of extracellular HSP90α (eHSP90α) attenuated cardiac hypertrophy and dysfunction by inhibition of β-catenin/TCF7 signaling under pressure overload. Further analysis revealed that eHSP90α interacted with EC1-EC2 region of N-cadherin to activate β-catenin, enhancing the transcription of hypertrophic genes by TCF7, resulting in cardiac hypertrophy and dysfunction under pressure overload. These insights suggest the therapeutic potential of targeting HSP90α-initiated signaling pathway against cardiac hypertrophy and heart failure under pressure overload.
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来源期刊
Redox Biology
Redox Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
19.90
自引率
3.50%
发文量
318
审稿时长
25 days
期刊介绍: Redox Biology is the official journal of the Society for Redox Biology and Medicine and the Society for Free Radical Research-Europe. It is also affiliated with the International Society for Free Radical Research (SFRRI). This journal serves as a platform for publishing pioneering research, innovative methods, and comprehensive review articles in the field of redox biology, encompassing both health and disease. Redox Biology welcomes various forms of contributions, including research articles (short or full communications), methods, mini-reviews, and commentaries. Through its diverse range of published content, Redox Biology aims to foster advancements and insights in the understanding of redox biology and its implications.
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