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通过 MD 模拟对缺氧诱导因子α-脯氨酰羟化酶结构域 2 相互作用的结构特征进行研究。

Structural Characterization of Hypoxia Inducible Factor α-Prolyl Hydroxylase Domain 2 Interaction through MD Simulations.

机构信息

Department of Biomedical Sciences, University of Padua, 35121 Padova, Italy.

出版信息

Int J Mol Sci. 2023 Mar 1;24(5):4710. doi: 10.3390/ijms24054710.

Abstract

The Prolyl Hydroxylases (PHDs) are an enzymatic family that regulates cell oxygen-sensing. PHDs hydroxylate hypoxia-inducible transcription factors α (HIFs-α) driving their proteasomal degradation. Hypoxia inhibits PHDs activity, inducing HIFs-α stabilization and cell adaptation to hypoxia. As a hallmark of cancer, hypoxia promotes neo-angiogenesis and cell proliferation. PHD isoforms are thought to have a variable impact on tumor progression. All isoforms hydroxylate HIF-α (HIF-1,2,3α) with different affinities. However, what determines these differences and how they pair with tumor growth is poorly understood. Here, molecular dynamics simulations were used to characterize the PHD2 binding properties in complexes with HIF-1α and HIF-2α. In parallel, conservation analysis and binding free energy calculations were performed to better understand PHD2 substrate affinity. Our data suggest a direct association between the PHD2 C-terminus and HIF-2α that is not observed in the PHD2/HIF-1α complex. Furthermore, our results indicate that phosphorylation of a PHD2 residue, Thr405, causes a variation in binding energy, despite the fact that this PTM has only a limited structural impact on PHD2/HIFs-α complexes. Collectively, our findings suggest that the PHD2 C-terminus may act as a molecular regulator of PHD's activity.

摘要

脯氨酰羟化酶(PHD)是一个酶家族,可调节细胞的氧感应。PHD 羟化缺氧诱导转录因子α(HIF-α),促进其蛋白酶体降解。缺氧抑制 PHD 活性,诱导 HIF-α 稳定并使细胞适应缺氧。作为癌症的一个标志,缺氧促进新生血管形成和细胞增殖。PHD 同工型被认为对肿瘤进展有不同的影响。所有同工型都以不同的亲和力羟化 HIF-α(HIF-1、2、3α)。然而,是什么决定了这些差异以及它们如何与肿瘤生长相关联,目前还知之甚少。在这里,我们使用分子动力学模拟来描述 PHD2 与 HIF-1α 和 HIF-2α 复合物的结合特性。同时,进行了保守性分析和结合自由能计算,以更好地理解 PHD2 对底物的亲和力。我们的数据表明,PHD2 C 端与 HIF-2α 之间存在直接关联,而在 PHD2/HIF-1α 复合物中则没有观察到这种关联。此外,我们的结果表明,尽管这种 PTM 对 PHD2/HIFs-α 复合物的结构只有有限的影响,但 PHD2 残基 Thr405 的磷酸化会导致结合能的变化。总之,我们的研究结果表明,PHD2 C 端可能作为 PHD 活性的分子调节剂发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e2c/10003257/b1860891b90e/ijms-24-04710-g001.jpg

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