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基于2-氧代戊二酸类似物的生物分子工具,用于探索非血红素铁酶中的构效关系。

2-Oxoglutarate Analog-Based Biomolecular Tools for Exploring Structure-Activity Relationships in Nonheme Iron Enzymes.

作者信息

Windsor Peter, Chatterjee Sourav, Damodaran Anoop Rama, Bhagi-Damodaran Ambika

机构信息

Department of Chemistry, University of Minnesota, Twin Cities, Minneapolis, 55455, USA.

出版信息

Chembiochem. 2025 Jun 22:e2500177. doi: 10.1002/cbic.202500177.

Abstract

2-oxoglutarate (2OG)-dependent nonheme iron (NHFe) enzymes constitute a family of enzymes that use 2OG and oxygen to hydroxylate unactivated C(sp)-H bonds. These enzymes are biologically important and therapeutically relevant due to their role in key cellular processes. However, selective targeting remains challenging due to high structural conservation in their active sites. Herein, two classes of 2OG analogs are rationally designed and used as tools to investigate the active site of a 2OG-dependent NHFe enzyme, prolyl hydroxylase domain 2 (PHD2). Using an activity assay in conjunction with steady-state kinetics, a new class of aryl-conjugated 2OG analogs is identified that exhibits 12-fold varied inhibition and competes with 2OG for the PHD2 active site. Immunoblot studies suggest that these analogs are biologically active and can target PHD2 intracellularly. Furthermore, computational modeling studies reveal that the analogs bind to the active site in a "flipped" conformation relative to 2OG, and functional group placement is responsible for their different inhibition capabilities. Mutagenesis studies further validate this unique binding mode and suggest several interactions that are crucial for inhibition. Overall, these studies provide a toolkit of 2OG analogs to establish structure-activity relationships and identify interactions that can be useful for PHD2 inhibitor design.

摘要

2-氧代戊二酸(2OG)依赖性非血红素铁(NHFe)酶构成了一类利用2OG和氧气对未活化的C(sp)-H键进行羟基化的酶。由于这些酶在关键细胞过程中发挥作用,它们在生物学上具有重要意义且与治疗相关。然而,由于其活性位点的高度结构保守性,选择性靶向仍然具有挑战性。在此,合理设计了两类2OG类似物,并将其用作研究2OG依赖性NHFe酶脯氨酰羟化酶结构域2(PHD2)活性位点的工具。通过结合稳态动力学的活性测定,鉴定出一类新型的芳基共轭2OG类似物,其表现出12倍的抑制差异,并与2OG竞争PHD2活性位点。免疫印迹研究表明,这些类似物具有生物活性,并且可以在细胞内靶向PHD2。此外,计算建模研究表明,这些类似物相对于2OG以“翻转”构象结合到活性位点,官能团的位置决定了它们不同的抑制能力。诱变研究进一步验证了这种独特结合模式,并表明了几种对抑制至关重要的相互作用。总体而言,这些研究提供了一套2OG类似物工具包,以建立构效关系并确定对PHD2抑制剂设计有用的相互作用。

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