IF 5.2 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Life sciences Pub Date : 2025-02-19 DOI:10.1016/j.lfs.2025.123500
Lili Zhang , Lili Feng , Yifang Zhao , Yanbin Geng , Renhan Liu , Yixuan Ma , Wenyan Bo , Yue Xi , Zhenjun Tian
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摘要

目的射血分数保留型心力衰竭(HFpEF)是一种日益普遍的心血管疾病,通常伴有肾功能障碍。运动被认为是改善肾功能的可行策略。本研究旨在探讨有氧运动(AE)是否能通过调节酰辅酶A:溶血磷脂酰基转移酶-1(ALCAT1)的表达来改善HFpEF诱导的肾损伤。运动干预组小鼠进行了为期六周的AE训练。使用超声心动图和无创智能血压计评估心脏功能和血压。通过 HE、Masson 和 PAS 染色法检测肾脏形态和功能,并使用商业试剂盒进行生化检测。主要发现在高频肾衰竭诱导的肾损伤模型中,ALCAT1 蛋白表达上调,并伴有心脏和肾脏功能障碍。AE 逆转了这些病理变化。此外,敲除 Alcat1 能显著减轻 HFpEF 诱导的肾脏氧化应激、炎症、细胞凋亡和纤维化。此外,Alcat1 基因敲除进一步增强了运动的保护作用,改善了 HFpEF 小鼠的肾损伤并改善了其肾功能。在缺乏 ALCAT1 的情况下,这些有益作用进一步增强。因此,ALCAT1 可能是治疗 HFpEF 引起的肾损伤的潜在治疗靶点。
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Lack of ALCAT1 enhances the protective effects of aerobic exercise on kidney in HFpEF mice

Aims

Heart failure with preserved ejection fraction (HFpEF) is an increasingly prevalent cardiovascular disease, which is often accompanied by kidney dysfunction. Exercise has been recognized as a feasible strategy to improve renal function. The aim of this study was to investigate whether aerobic exercise (AE) could ameliorate HFpEF-induced renal injury by regulating the expression of acyl-coenzyme A: lysocardiolipin acyltransferase-1 (ALCAT1).

Materials and methods

Eight-week-old C57BL/6 and Alcat1 knockout mice were used to establish a HFpEF induced kidney injury model. Mice in the exercise-intervention group were performed a six-week of AE training. Cardiac function and blood pressure were assessed using echocardiography and a non-invasive intelligent blood pressure monitor. Renal morphology and function were detected by HE, Masson, and PAS staining, as well as biochemical assays using commercial kits. Oxidative stress, inflammation, apoptosis, and renal fibrosis-related proteins were detected by Western Blotting.

Key findings

In the HFpEF induced kidney injury model, ALCAT1 protein expression was upregulated, accompanied by cardiac and renal dysfunction. These pathological changes were reversed by AE. In addition, Alcat1 knockout significantly alleviated HFpEF-induced oxidative stress, inflammation, apoptosis, and fibrosis in the kidneys. Furthermore, Alcat1 knockout further enhanced the protective effects of exercise, ameliorating renal injury and improving renal function in HFpEF mice.

Significance

AE significantly improved renal function by alleviating oxidative stress, inflammation, apoptosis, and fibrosis in HFpEF mice. These beneficial effects were further enhanced in the lack of ALCAT1. Thus, ALCAT1 might represent a potential therapeutic target for the treatment of HFpEF-induced kidney injury.
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来源期刊
Life sciences
Life sciences 医学-药学
CiteScore
12.20
自引率
1.60%
发文量
841
审稿时长
6 months
期刊介绍: Life Sciences is an international journal publishing articles that emphasize the molecular, cellular, and functional basis of therapy. The journal emphasizes the understanding of mechanism that is relevant to all aspects of human disease and translation to patients. All articles are rigorously reviewed. The Journal favors publication of full-length papers where modern scientific technologies are used to explain molecular, cellular and physiological mechanisms. Articles that merely report observations are rarely accepted. Recommendations from the Declaration of Helsinki or NIH guidelines for care and use of laboratory animals must be adhered to. Articles should be written at a level accessible to readers who are non-specialists in the topic of the article themselves, but who are interested in the research. The Journal welcomes reviews on topics of wide interest to investigators in the life sciences. We particularly encourage submission of brief, focused reviews containing high-quality artwork and require the use of mechanistic summary diagrams.
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