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线粒体柠檬酸载体 SLC25A1 调节心脏发育中的代谢重编程和形态发生。

The mitochondrial citrate carrier SLC25A1 regulates metabolic reprogramming and morphogenesis in the developing heart.

机构信息

Graduate Program in Biochemistry, Cell and Developmental Biology; Graduate Division of Biological and Biomedical Sciences; Emory University, Atlanta, GA, USA.

Division of Pediatric Cardiology; Department of Pediatrics; Emory University School of Medicine; and Children's Healthcare of Atlanta, Atlanta, GA, USA.

出版信息

Commun Biol. 2024 Oct 31;7(1):1422. doi: 10.1038/s42003-024-07110-8.

Abstract

The developing mammalian heart undergoes an important metabolic shift from glycolysis towards mitochondrial oxidation that is critical to support the increasing energetic demands of the maturing heart. Here, we describe a new mechanistic link between mitochondria and cardiac morphogenesis, uncovered by studying mitochondrial citrate carrier (SLC25A1) knockout mice. Slc25a1 null embryos displayed impaired growth, mitochondrial dysfunction and cardiac malformations that recapitulate the congenital heart defects observed in 22q11.2 deletion syndrome, a microdeletion disorder involving the SLC25A1 locus. Importantly, Slc25a1 heterozygous embryos, while overtly indistinguishable from wild type, exhibited an increased frequency of these defects, suggesting Slc25a1 haploinsuffiency and dose-dependent effects. Mechanistically, SLC25A1 may link mitochondria to transcriptional regulation of metabolism through epigenetic control of gene expression to promote metabolic remodeling in the developing heart. Collectively, this work positions SLC25A1 as a novel mitochondrial regulator of cardiac morphogenesis and metabolic maturation, and suggests a role in congenital heart disease.

摘要

哺乳动物心脏在发育过程中经历了从糖酵解向线粒体氧化的重要代谢转变,这对于支持不断成熟的心脏的能量需求至关重要。在这里,我们通过研究线粒体柠檬酸载体(SLC25A1)敲除小鼠,揭示了线粒体和心脏形态发生之间的新的机制联系。Slc25a1 缺失胚胎表现出生长受损、线粒体功能障碍和心脏畸形,这些与 22q11.2 缺失综合征(一种涉及 SLC25A1 基因座的微缺失疾病)中观察到的先天性心脏缺陷相吻合。重要的是,Slc25a1 杂合子胚胎虽然在外观上与野生型无异,但这些缺陷的发生频率增加,表明 Slc25a1 半合子不足和剂量依赖性效应。从机制上讲,SLC25A1 可以通过基因表达的表观遗传控制将线粒体与代谢的转录调节联系起来,以促进发育中心脏的代谢重塑。总的来说,这项工作将 SLC25A1 定位为心脏形态发生和代谢成熟的新型线粒体调节剂,并提示其在先天性心脏病中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b389/11528069/131fb79a9b77/42003_2024_7110_Fig1_HTML.jpg

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