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缺氧减轻压力超负荷诱导的心力衰竭。

Hypoxia Attenuates Pressure Overload-Induced Heart Failure.

作者信息

Froese Natali, Szaroszyk Malgorzata, Galuppo Paolo, Visker Joseph R, Werlein Christopher, Korf-Klingebiel Mortimer, Berliner Dominik, Reboll Marc R, Hamouche Rana, Gegel Simona, Wang Yong, Hofmann Winfried, Tang Ming, Geffers Robert, Wende Adam R, Kühnel Mark P, Jonigk Danny D, Hansmann Georg, Wollert Kai C, Abel E Dale, Drakos Stavros G, Bauersachs Johann, Riehle Christian

机构信息

Department of Cardiology and Angiology Hannover Medical School Hannover Germany.

Nora Eccles Harrison Cardiovascular Research and Training Institute (CVRTI) and Division of Cardiovascular Medicine University of Utah School of Medicine Salt Lake City UT USA.

出版信息

J Am Heart Assoc. 2024 Feb 6;13(3):e033553. doi: 10.1161/JAHA.123.033553. Epub 2024 Jan 31.

Abstract

BACKGROUND

Alveolar hypoxia is protective in the context of cardiovascular and ischemic heart disease; however, the underlying mechanisms are incompletely understood. The present study sought to test the hypothesis that hypoxia is cardioprotective in left ventricular pressure overload (LVPO)-induced heart failure. We furthermore aimed to test that overlapping mechanisms promote cardiac recovery in heart failure patients following left ventricular assist device-mediated mechanical unloading and circulatory support.

METHODS AND RESULTS

We established a novel murine model of combined chronic alveolar hypoxia and LVPO following transverse aortic constriction (HxTAC). The HxTAC model is resistant to cardiac hypertrophy and the development of heart failure. The cardioprotective mechanisms identified in our HxTAC model include increased activation of HIF (hypoxia-inducible factor)-1α-mediated angiogenesis, attenuated induction of genes associated with pathological remodeling, and preserved metabolic gene expression as identified by RNA sequencing. Furthermore, LVPO decreased and increased mRNA expression under normoxic conditions, which was attenuated under hypoxic conditions and may induce additional hypoxia-mediated cardioprotective effects. Analysis of samples from patients with advanced heart failure that demonstrated left ventricular assist device-mediated myocardial recovery revealed a similar expression pattern for and as observed in HxTAC hearts.

CONCLUSIONS

Hypoxia attenuates LVPO-induced heart failure. Cardioprotective pathways identified in the HxTAC model might also contribute to cardiac recovery following left ventricular assist device support. These data highlight the potential of our novel HxTAC model to identify hypoxia-mediated cardioprotective mechanisms and therapeutic targets that attenuate LVPO-induced heart failure and mediate cardiac recovery following mechanical circulatory support.

摘要

背景

在心血管疾病和缺血性心脏病的背景下,肺泡低氧具有保护作用;然而,其潜在机制尚未完全明确。本研究旨在验证低氧对左心室压力超负荷(LVPO)诱导的心力衰竭具有心脏保护作用这一假说。此外,我们还旨在验证重叠机制是否能促进心力衰竭患者在左心室辅助装置介导的机械卸载和循环支持后心脏的恢复。

方法与结果

我们建立了一种新型小鼠模型,即在横断主动脉缩窄(HxTAC)后联合慢性肺泡低氧和LVPO。HxTAC模型对心脏肥大和心力衰竭的发展具有抗性。我们在HxTAC模型中确定的心脏保护机制包括缺氧诱导因子(HIF)-1α介导的血管生成激活增加、与病理重塑相关基因的诱导减弱以及通过RNA测序确定的代谢基因表达得以保留。此外,在常氧条件下LVPO降低和增加了mRNA表达,而在低氧条件下这种表达减弱,这可能诱导了额外的低氧介导的心脏保护作用。对晚期心力衰竭患者样本的分析显示,这些患者经左心室辅助装置介导心肌恢复,其和的表达模式与HxTAC心脏中观察到的相似。

结论

低氧可减轻LVPO诱导的心力衰竭。在HxTAC模型中确定的心脏保护途径可能也有助于左心室辅助装置支持后心脏的恢复。这些数据凸显了我们新型HxTAC模型在识别低氧介导的心脏保护机制和治疗靶点方面的潜力,这些机制和靶点可减轻LVPO诱导的心力衰竭并介导机械循环支持后的心脏恢复。

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