Intertwined regulators: hypoxia pathway proteins, microRNAs, and phosphodiesterases in the control of steroidogenesis.

IF 2.9 4区 医学 Q2 PHYSIOLOGY Pflugers Archiv : European journal of physiology Pub Date : 2024-09-01 Epub Date: 2024-02-15 DOI:10.1007/s00424-024-02921-4
Stephen Ariyeloye, Susanne Kämmerer, Erik Klapproth, Ben Wielockx, Ali El-Armouche
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Abstract

Oxygen sensing is of paramount importance for maintaining cellular and systemic homeostasis. In response to diminished oxygen levels, the hypoxia-inducible factors (HIFs) orchestrate various biological processes. These pivotal transcription factors have been identified as key regulators of several biological events. Notably, extensive research from our group and others has demonstrated that HIF1α exerts an inverse regulatory effect on steroidogenesis, leading to the suppression of crucial steroidogenic enzyme expression and a subsequent decrease in steroid levels. These steroid hormones occupy pivotal roles in governing a myriad of physiological processes. Substantial or prolonged fluctuations in steroid levels carry detrimental consequences across multiple organ systems and underlie various pathological conditions, including metabolic and immune disorders. MicroRNAs serve as potent mediators of multifaceted gene regulatory mechanisms, acting as influential epigenetic regulators that modulate a broad spectrum of gene expressions. Concomitantly, phosphodiesterases (PDEs) play a crucial role in governing signal transduction. PDEs meticulously manage intracellular levels of both cAMP and cGMP, along with their respective signaling pathways and downstream targets. Intriguingly, an intricate interplay seems to exist between hypoxia signaling, microRNAs, and PDEs in the regulation of steroidogenesis. This review highlights recent advances in our understanding of the role of microRNAs during hypoxia-driven processes, including steroidogenesis, as well as the possibilities that exist in the application of HIF prolyl hydroxylase (PHD) inhibitors for the modulation of steroidogenesis.

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相互交织的调控因子:控制类固醇生成的缺氧通路蛋白、微小核糖核酸和磷酸二酯酶。
氧感应对于维持细胞和全身的平衡至关重要。为应对氧气水平的降低,缺氧诱导因子(HIFs)会协调各种生物过程。这些关键转录因子已被确定为多种生物事件的关键调节因子。值得注意的是,我们小组和其他小组的大量研究表明,HIF1α 对类固醇的生成具有反向调节作用,导致关键类固醇生成酶的表达受到抑制,类固醇水平随之下降。这些类固醇激素在调节无数生理过程中发挥着关键作用。类固醇水平的大幅或长期波动会对多个器官系统造成有害影响,并导致各种病理状况,包括代谢和免疫紊乱。MicroRNA 是多方面基因调控机制的有效介质,是具有影响力的表观遗传调控因子,可调节广泛的基因表达。与此同时,磷酸二酯酶(PDEs)在信号转导方面也发挥着至关重要的作用。磷酸二酯酶精心管理细胞内的 cAMP 和 cGMP 水平,以及它们各自的信号通路和下游靶标。耐人寻味的是,在调节类固醇生成的过程中,缺氧信号、microRNA 和 PDE 之间似乎存在着错综复杂的相互作用。这篇综述重点介绍了我们对缺氧驱动过程(包括类固醇生成)中 microRNAs 作用的最新理解进展,以及应用 HIF 丙氨酰羟化酶(PHD)抑制剂调节类固醇生成的可能性。
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来源期刊
CiteScore
8.80
自引率
2.20%
发文量
121
审稿时长
4-8 weeks
期刊介绍: Pflügers Archiv European Journal of Physiology publishes those results of original research that are seen as advancing the physiological sciences, especially those providing mechanistic insights into physiological functions at the molecular and cellular level, and clearly conveying a physiological message. Submissions are encouraged that deal with the evaluation of molecular and cellular mechanisms of disease, ideally resulting in translational research. Purely descriptive papers covering applied physiology or clinical papers will be excluded. Papers on methodological topics will be considered if they contribute to the development of novel tools for further investigation of (patho)physiological mechanisms.
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Obituary for Prof. Stephen (Ben) Walsh, Professor of Nephrology at University College London. The role of non-coding RNAs in neuropathic pain. The emerging roles of necroptosis in skeletal muscle health and disease. Neuroprotective actions of norepinephrine in neurological diseases. BK channels promote action potential repolarization in skeletal muscle but contribute little to myotonia.
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