TRPC5通过氧化应激促进间歇性缺氧诱导的心肌细胞损伤。

IF 3 2区 医学 Q2 CLINICAL NEUROLOGY Nature and Science of Sleep Pub Date : 2024-12-19 eCollection Date: 2024-01-01 DOI:10.2147/NSS.S494748
Xuan Qiu, Yanli Yao, Yulan Chen, Yu Li, Xiaojing Sun, Xiaoli Zhu
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引用次数: 0

摘要

目的:间歇性缺氧(IH)是阻塞性睡眠呼吸暂停(OSA)的一个典型特征,与心脏损伤相关,并与瞬时受体电位规范通道5 (TRPC5)有关。尽管如此,TRPC5在osa诱导的心脏损伤中的功能仍不确定。本研究旨在探讨TRPC5在间歇性缺氧致心肌细胞损伤中的作用及其潜在机制。方法:选取30例新诊断OSA患者和30例原发性打鼾患者作为研究对象。参与者接受多导睡眠图(PSG)诊断OSA。超声心动图评价心脏结构和功能,同时采集外周血。此外,利用RT-qPCR定量外周血中TRPC5 mRNA的相对表达水平。H9c2细胞经历IH或常氧。采用RT-qPCR和Western blotting (WB)方法检测H9c2细胞中TRPC5水平。过表达TRPC5的H9c2细胞被置于常氧或间歇性缺氧条件下。CCK8检测细胞活力,流式细胞术检测细胞凋亡率、活性氧(ROS)水平和Ca2+浓度,WB检测TRPC5、Bcl-2、Bax和Caspase-3蛋白水平。采用线粒体膜电位(MMP)、线粒体膜透性过渡孔(mPTP)和透射电镜(TEM)观察线粒体功能和结构。用n -乙酰半胱氨酸(NAC)抑制ROS后,进一步检测细胞凋亡、线粒体功能和结构以及Ca2+浓度。结果:OSA患者的TRPC5和左房径(LAD)较高,而E/A比值较低(均ppp)。结论:TRPC5与OSA患者心脏结构和功能损伤有关,TRPC5通过OxS促进ih诱导的心肌细胞凋亡和线粒体损伤。TRPC5可能成为osa诱导心肌损伤诊断和治疗的新靶点。
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TRPC5 Promotes Intermittent Hypoxia-Induced Cardiomyocyte Injury Through Oxidative Stress.

Purpose: Intermittent hypoxia (IH), a defining feature of obstructive sleep apnea (OSA), is associated with heart damage and linked to transient receptor potential canonical channel 5 (TRPC5). Nonetheless, the function of TRPC5 in OSA-induced cardiac injury remains uncertain. For this research, we aimed to explore the role and potential mechanism of TRPC5 in cardiomyocyte injury induced by intermittent hypoxia.

Methods: 30 patients with newly diagnosed OSA and 30 patients with primary snoring(PS) were included in this study. Participants were subjected to polysomnography (PSG) for OSA diagnosis. Echocardiography was used to evaluate the structure and function of the heart, while peripheral blood samples were obtained. Additionally, RT-qPCR was utilized to quantify the relative expression level of TRPC5 mRNA in peripheral blood. H9c2 cells experienced IH or normoxia. TRPC5 levels in H9c2 cells were determined via RT-qPCR and Western blotting (WB) methods. H9c2 cells overexpressing TRPC5 were subjected to either normoxic or intermittent hypoxia conditions. Cell viability was determined by CCK8, the apoptosis rate, reactive oxygen species(ROS) levels, and Ca2+ concentration were assessed by flow cytometry, and the protein levels of TRPC5, Bcl-2, Bax, and Caspase-3 were analyzed by WB. Mitochondrial membrane potential(MMP), mitochondrial membrane permeability transition pore(mPTP), and transmission electron microscopy(TEM) were employed to observe mitochondrial function and structure. After inhibiting ROS with N-acetylcysteine (NAC), apoptosis, mitochondrial function and structure, and the concentration of Ca2+ were further detected.

Results: TRPC5 and left atrial diameter (LAD) were higher in OSA individuals, while the E/A ratio was lower(all P<0.05). IH impaired cell viability, triggered cell apoptosis, and enhanced TRPC5 expression in H9c2 cells(all P<0.05). The effects of IH on apoptosis, cell viability, mitochondrial function and structure damage, and oxidative stress (OxS) in H9c2 cells were accelerated by the overexpression of TRPC5(all P<0.05). Furthermore, cell apoptosis and mitochondrial structural and functional damage caused by overexpression of TRPC5 were attenuated by ROS inhibition.

Conclusion: TRPC5 is associated with structural and functional cardiac damage in patients with OSA, and TRPC5 promotes IH-induced apoptosis and mitochondrial damage in cardiomyocytes through OxS. TRPC5 may be a novel target for the diagnosis and treatment of OSA-induced myocardial injury.

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来源期刊
Nature and Science of Sleep
Nature and Science of Sleep Neuroscience-Behavioral Neuroscience
CiteScore
5.70
自引率
5.90%
发文量
245
审稿时长
16 weeks
期刊介绍: Nature and Science of Sleep is an international, peer-reviewed, open access journal covering all aspects of sleep science and sleep medicine, including the neurophysiology and functions of sleep, the genetics of sleep, sleep and society, biological rhythms, dreaming, sleep disorders and therapy, and strategies to optimize healthy sleep. Specific topics covered in the journal include: The functions of sleep in humans and other animals Physiological and neurophysiological changes with sleep The genetics of sleep and sleep differences The neurotransmitters, receptors and pathways involved in controlling both sleep and wakefulness Behavioral and pharmacological interventions aimed at improving sleep, and improving wakefulness Sleep changes with development and with age Sleep and reproduction (e.g., changes across the menstrual cycle, with pregnancy and menopause) The science and nature of dreams Sleep disorders Impact of sleep and sleep disorders on health, daytime function and quality of life Sleep problems secondary to clinical disorders Interaction of society with sleep (e.g., consequences of shift work, occupational health, public health) The microbiome and sleep Chronotherapy Impact of circadian rhythms on sleep, physiology, cognition and health Mechanisms controlling circadian rhythms, centrally and peripherally Impact of circadian rhythm disruptions (including night shift work, jet lag and social jet lag) on sleep, physiology, cognition and health Behavioral and pharmacological interventions aimed at reducing adverse effects of circadian-related sleep disruption Assessment of technologies and biomarkers for measuring sleep and/or circadian rhythms Epigenetic markers of sleep or circadian disruption.
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