颈动脉体血管球I型细胞Agrp的缺氧诱导因子依赖性上调。

IF 7 2区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Luis Leon-Mercado, Ivan Menendez-Montes, Jonathan Tao, Bandy Chen, David P Olson, C Mackaaij, C G J Cleypool, Laurent Gautron
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引用次数: 0

摘要

agouti相关肽(AgRP)是一种主要表达于下丘脑神经元的强效致氧肽。然而,下丘脑外AgRP的表达和功能意义仍然知之甚少。在这项研究中,我们利用组织学和分子生物学技术,在小鼠颈动脉体(CB)的血管球I型细胞中发现了Agrp mRNA的显著表达和Agrp肽的产生。此外,我们发现了支持AgRP受体黑素皮质素受体3 (Mc3r)在邻近交感神经元中表达的证据,这表明AgRP在CB中可能具有局部旁分泌作用。重要的是,AgRP免疫反应性也在人CB的球囊I型细胞中被鉴定出来。考虑到glus I型细胞(一种专门用于氧感应的化学受体细胞)中AgRP的丰度出乎意料,我们进一步研究了AgRP在CB中的表达是否受低氧血症和相关的氧感应分子机制的调节。体外荧光素酶实验显示,缺氧刺激人和小鼠Agrp启动子以缺氧诱导因子(hif /2)依赖的方式表达。我们的体内实验进一步证明,暴露于环境缺氧(10%)可显著诱导小鼠I型肾小球细胞中Agrp的表达。此外,这些发现共同强调了迄今为止未知的鼠和人I型肾小球细胞中AgRP的来源,并强调了HIF信号直接控制AgRP的转录。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hypoxia inducible factor-dependent upregulation of Agrp in glomus type I cells of the carotid body.

Agouti-related peptide (AgRP) is a well-established potent orexigenic peptide primarily expressed in hypothalamic neurons. Nevertheless, the expression and functional significance of extrahypothalamic AgRP remain poorly understood. In this study, utilizing histological and molecular biology techniques, we have identified a significant expression of Agrp mRNA and AgRP peptide production in glomus type I cells within the mouse carotid body (CB). Furthermore, we have uncovered evidence supporting the expression of the AgRP receptor melanocortin receptor 3 (Mc3r) in adjacent sympathetic neurons, suggesting a potential local paracrine role for AgRP within the CB. Importantly, AgRP immunoreactivity was also identified in glomus type I cells of the human CB. Given the unexpected abundance of AgRP in glomus type I cells, a chemoreceptor cell specialized in oxygen sensing, we proceeded to investigate whether Agrp expression in the CB is regulated by hypoxemia and associated oxygen-sensing molecular mechanisms. In vitro luciferase assays reveal that hypoxia stimulates the human and mouse Agrp promoters in a Hypoxia Inducible Factor (HIF1/2)-dependent manner. Our in vivo experiments further demonstrate that exposure to environmental hypoxia (10%) robustly induces Agrp expression in type I glomus cells of mice. Furthermore, these findings collectively highlight the hitherto unknown source of AgRP in murine and human type I glomus cells and underscore the direct control of Agrp transcription by HIF signaling.

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来源期刊
Molecular Metabolism
Molecular Metabolism ENDOCRINOLOGY & METABOLISM-
CiteScore
14.50
自引率
2.50%
发文量
219
审稿时长
43 days
期刊介绍: Molecular Metabolism is a leading journal dedicated to sharing groundbreaking discoveries in the field of energy homeostasis and the underlying factors of metabolic disorders. These disorders include obesity, diabetes, cardiovascular disease, and cancer. Our journal focuses on publishing research driven by hypotheses and conducted to the highest standards, aiming to provide a mechanistic understanding of energy homeostasis-related behavior, physiology, and dysfunction. We promote interdisciplinary science, covering a broad range of approaches from molecules to humans throughout the lifespan. Our goal is to contribute to transformative research in metabolism, which has the potential to revolutionize the field. By enabling progress in the prognosis, prevention, and ultimately the cure of metabolic disorders and their long-term complications, our journal seeks to better the future of health and well-being.
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