HIF1α controls steroidogenesis under acute hypoxic stress.

IF 8.2 2区 生物学 Q1 CELL BIOLOGY Cell Communication and Signaling Pub Date : 2025-02-13 DOI:10.1186/s12964-025-02080-8
Stephen Ariyeloye, Deepika Watts, Mangesh T Jaykar, Cagdas Ermis, Anja Krüger, Denise Kaden, Barbara K Stepien, Vasileia Ismini Alexaki, Mirko Peitzsch, Nicole Bechmann, Peter Mirtschink, Ali El-Armouche, Ben Wielockx
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Abstract

Background: Hypoxia is a critical physiological and pathological condition known to influence various cellular processes, including steroidogenesis. While previous studies, including our own, have highlighted the regulatory effects of Hypoxia-Inducible Factor 1α (HIF1α) on steroid production, the specific molecular mechanisms remain poorly understood. This study investigates the role of hypoxia and HIF1α in steroid biosynthesis across multiple experimental models during acute exposure to low oxygen levels.

Methods: To assess the extent to which acute hypoxia modulates steroidogenesis, we employed several approaches, including the Y1 adrenocortical cell line, and a conditional HIF1α-deficient mouse line in the adrenal cortex. We focused on various regulatory patterns that may critically suppress steroidogenesis.

Results: In Y1 cells, hypoxia upregulated specific microRNAs in a HIF1α-dependent manner, resulting in the suppression of mRNA levels of critical steroidogenic enzymes and a subsequent reduction in steroid hormone production. The hypoxia/HIF1α-dependent induction of these microRNAs and the consequent modulation of steroid production were confirmed in vivo. Notably, using our adrenocortical-specific HIF1α-deficient mouse line, we demonstrated that the increase in miRNA expression in vivo is also directly HIF1α-dependent, while the regulation of steroidogenic enzymes (e.g., StAR and Cyp11a1) and steroid production occurs at the level of protein translation, revealing an unexpected layer of control under hypoxic/HIF1 α conditions in vivo.

Conclusions: These findings elucidate the molecular mechanisms underlying acute hypoxia/HIF1α-induced changes in steroid biosynthesis and may also be useful in developing new strategies for various steroid hormone pathologies.

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HIF1α控制急性缺氧应激下的类固醇生成。
背景:缺氧是一种重要的生理和病理状态,已知会影响各种细胞过程,包括类固醇生成。虽然之前的研究,包括我们自己的研究,已经强调了缺氧诱导因子1α (HIF1α)对类固醇生成的调节作用,但具体的分子机制仍然知之甚少。本研究通过多个实验模型探讨了缺氧和HIF1α在急性低氧条件下类固醇生物合成中的作用。方法:为了评估急性缺氧对类固醇生成的调节程度,我们采用了几种方法,包括Y1肾上腺皮质细胞系和肾上腺皮质条件hif1 α-缺陷小鼠系。我们专注于可能严重抑制类固醇生成的各种调节模式。结果:在Y1细胞中,缺氧以hif α依赖的方式上调特异性microrna,导致关键类固醇生成酶mRNA水平受到抑制,随后类固醇激素产生减少。体内实验证实了缺氧/ hif α依赖性诱导这些microrna及其对类固醇产生的调节。值得注意的是,使用我们的肾上腺皮质特异性HIF1α缺陷小鼠系,我们发现体内miRNA表达的增加也直接依赖于HIF1α,而类固醇生成酶(如StAR和Cyp11a1)和类固醇生成的调节发生在蛋白质翻译水平,揭示了体内缺氧/HIF1 α条件下意想不到的控制层。结论:这些发现阐明了急性缺氧/ hif1 α-诱导的类固醇生物合成变化的分子机制,也可能有助于制定治疗各种类固醇激素病理的新策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
11.00
自引率
0.00%
发文量
180
期刊介绍: Cell Communication and Signaling (CCS) is a peer-reviewed, open-access scientific journal that focuses on cellular signaling pathways in both normal and pathological conditions. It publishes original research, reviews, and commentaries, welcoming studies that utilize molecular, morphological, biochemical, structural, and cell biology approaches. CCS also encourages interdisciplinary work and innovative models, including in silico, in vitro, and in vivo approaches, to facilitate investigations of cell signaling pathways, networks, and behavior. Starting from January 2019, CCS is proud to announce its affiliation with the International Cell Death Society. The journal now encourages submissions covering all aspects of cell death, including apoptotic and non-apoptotic mechanisms, cell death in model systems, autophagy, clearance of dying cells, and the immunological and pathological consequences of dying cells in the tissue microenvironment.
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