成年斑马鱼的心脏再生:信号和代谢协调的综述。

IF 3.1 3区 医学 Q2 CARDIAC & CARDIOVASCULAR SYSTEMS
Arkadeep Mitra, Subhadeep Mandal, Kalyan Banerjee, Nilanjan Ganguly, Pramit Sasmal, Durba Banerjee, Shreyasi Gupta
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引用次数: 0

摘要

综述目的:本文综述了斑马鱼心肌细胞损伤后信号转导和能量代谢在细胞周期再进入和增殖过程中的两个关键环节。它旨在强调与哺乳动物相比,增生性心肌细胞的可能作用机制,并确定目前对心脏再生代谢调节的理解中的空白。最新发现:哺乳动物出生后代谢底物的变化与心肌细胞增殖减少有关。与成年哺乳动物的心脏不同,斑马鱼可以通过重新进入细胞周期来再生心肌细胞,其特征是从氧化代谢到增加糖酵解的代谢转换。斑马鱼为研究细胞周期再进入和心脏再生过程中的代谢调节提供了有价值的模型。在不同的斑马鱼心脏再生模型中,增殖性心肌细胞上调Notch、hippo和Wnt信号,减少ROS的产生和DNA损伤。了解已经分化的斑马鱼心肌细胞在细胞周期再进入过程中代谢开关之间的相关性越来越被认为是心脏再生的关键因素。斑马鱼的研究为心脏再生过程中的代谢适应提供了见解,强调了代谢开关的重要性。然而,存在机制上的差距,需要广泛的研究来帮助制定心脏再生医学的治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cardiac Regeneration in Adult Zebrafish: A Review of Signaling and Metabolic Coordination.

Purpose of review: This review investigates how post-injury cellular signaling and energy metabolism are two pivotal points in zebrafish's cardiomyocyte cell cycle re-entry and proliferation. It seeks to highlight the probable mechanism of action in proliferative cardiomyocytes compared to mammals and identify gaps in the current understanding of metabolic regulation of cardiac regeneration.

Recent findings: Metabolic substrate changes after birth correlate with reduced cardiomyocyte proliferation in mammals. Unlike adult mammalian hearts, zebrafish can regenerate cardiomyocytes by re-entering the cell cycle, characterized by a metabolic switch from oxidative metabolism to increased glycolysis. Zebrafish provide a valuable model for studying metabolic regulation during cell cycle re-entry and cardiac regeneration. Proliferative cardiomyocytes have upregulated Notch, hippo, and Wnt signaling and decreased ROS generation, DNA damage in different zebrafish cardiac regeneration models. Understanding the correlation between metabolic switches during cell cycle re-entry of already differentiated zebrafish cardiomyocytes is being increasingly recognized as a critical factor in heart regeneration. Zebrafish studies provide insights into metabolic adaptations during heart regeneration, emphasizing the importance of a metabolic switch. However, there are mechanistic gaps, and extensive studies are required to aid in formulating therapeutic strategies for cardiac regenerative medicine.

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来源期刊
Current Cardiology Reports
Current Cardiology Reports CARDIAC & CARDIOVASCULAR SYSTEMS-
CiteScore
6.20
自引率
2.70%
发文量
209
期刊介绍: The aim of this journal is to provide timely perspectives from experts on current advances in cardiovascular medicine. We also seek to provide reviews that highlight the most important recently published papers selected from the wealth of available cardiovascular literature. We accomplish this aim by appointing key authorities in major subject areas across the discipline. Section editors select topics to be reviewed by leading experts who emphasize recent developments and highlight important papers published over the past year. An Editorial Board of internationally diverse members suggests topics of special interest to their country/region and ensures that topics are current and include emerging research. We also provide commentaries from well-known figures in the field.
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