维生素a -视黄酸有助于老年肌肉干细胞和线粒体功能丧失。

IF 6.3 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
JCI insight Pub Date : 2025-03-25 eCollection Date: 2025-05-08 DOI:10.1172/jci.insight.183706
Paula M Fraczek, Pamela Duran, Benjamin A Yang, Valeria Ferre, Leanne Alawieh, Jesus A Castor-Macias, Vivian T Wong, Steve D Guzman, Celeste Piotto, Klimentini Itsani, Jacqueline A Larouche, Carlos A Aguilar
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引用次数: 0

摘要

成体干细胞在老年时数量和功能下降,确定能够延缓或恢复与年龄相关的成体干细胞功能障碍的因素对于维持健康的寿命至关重要。在这里,我们展示了维生素A,一种从饮食中提取并代谢成维甲酸的微量营养素,在肌肉干细胞中起到抗氧化剂和转录调节剂的作用。我们首先表明,年轻动物饮食中维生素A的阻碍会导致肌肉干细胞的线粒体和细胞周期功能障碍,从而模仿衰老。接下来,我们在体外和体内以成肌细胞和衰老肌肉干细胞中的维甲酸信号为靶点,观察到氧化损伤减少,线粒体功能增强,并通过脂肪酸氧化改善了静止状态的维持。接下来,我们检测到维生素A衍生的视黄醇受体,受视黄酸6或Stra6的刺激,随着肌肉干细胞的激活和衰老而减少。为了了解Stra6丢失的相关性,我们敲除了Stra6,观察了线粒体活性氧的积累,以及线粒体形态和呼吸的变化。这些结果表明,维生素A调节肌肉干细胞的线粒体和代谢,并强调了将干细胞功能与维生素摄入联系起来的独特机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vitamin A retinoic acid contributes to muscle stem cell and mitochondrial function loss in old age.

Adult stem cells decline in number and function in old age, and identifying factors that can delay or revert age-associated adult stem cell dysfunction are vital for maintaining a healthy lifespan. Here we show that vitamin A, a micronutrient that is derived from diet and metabolized into retinoic acid, acts as an antioxidant and transcriptional regulator in muscle stem cells. We first show that obstruction of dietary vitamin A in young animals drives mitochondrial and cell cycle dysfunction in muscle stem cells that mimics old age. Next, we pharmacologically targeted retinoic acid signaling in myoblasts and aged muscle stem cells ex vivo and in vivo and observed reductions in oxidative damage, enhanced mitochondrial function, and improved maintenance of quiescence through fatty acid oxidation. We next detected that the receptor for vitamin A-derived retinol, stimulated by retinoic acid 6 or Stra6, was diminished with muscle stem cell activation and in old age. To understand the relevance of Stra6 loss, we knocked down Stra6 and observed an accumulation of mitochondrial reactive oxygen species, as well as changes in mitochondrial morphology and respiration. These results demonstrate that vitamin A regulates mitochondria and metabolism in muscle stem cells and highlight a unique mechanism connecting stem cell function with vitamin intake.

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来源期刊
JCI insight
JCI insight Medicine-General Medicine
CiteScore
13.70
自引率
1.20%
发文量
543
审稿时长
6 weeks
期刊介绍: JCI Insight is a Gold Open Access journal with a 2022 Impact Factor of 8.0. It publishes high-quality studies in various biomedical specialties, such as autoimmunity, gastroenterology, immunology, metabolism, nephrology, neuroscience, oncology, pulmonology, and vascular biology. The journal focuses on clinically relevant basic and translational research that contributes to the understanding of disease biology and treatment. JCI Insight is self-published by the American Society for Clinical Investigation (ASCI), a nonprofit honor organization of physician-scientists founded in 1908, and it helps fulfill the ASCI's mission to advance medical science through the publication of clinically relevant research reports.
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