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蝶啶还原酶1的结构与动力学:与酶功能和药物设计相关的关键现象

Structure and dynamics of pteridine reductase 1: the key phenomena relevant to enzyme function and drug design.

作者信息

Panecka-Hofman Joanna, Poehner Ina

机构信息

Division of Biophysics, Institute of Experimental Physics, Faculty of Physics, University of Warsaw, Pasteura 5, 02-093, Warsaw, Poland.

School of Pharmacy, University of Eastern Finland, Yliopistonranta 1 C, 70211, Kuopio, Finland.

出版信息

Eur Biophys J. 2023 Oct;52(6-7):521-532. doi: 10.1007/s00249-023-01677-6. Epub 2023 Aug 22.

Abstract

Pteridine reductase 1 (PTR1) is a folate and pterin pathway enzyme unique for pathogenic trypanosomatids. As a validated drug target, PTR1 has been the focus of recent research efforts aimed at finding more effective treatments against human parasitic diseases such as leishmaniasis or sleeping sickness. Previous PTR1-centered structural studies highlighted the enzyme characteristics, such as flexible regions around the active site, highly conserved structural waters, and species-specific differences in pocket properties and dynamics, which likely impacts the binding of natural substrates and inhibitors. Furthermore, several aspects of the PTR1 function, such as the substrate inhibition phenomenon and the level of ligand binding cooperativity in the enzyme homotetramer, likely related to the global enzyme dynamics, are poorly known at the molecular level. We postulate that future drug design efforts could greatly benefit from a better understanding of these phenomena through studying both the local and global PTR1 dynamics. This review highlights the key aspects of the PTR1 structure and dynamics relevant to structure-based drug design that could be effectively investigated by modeling approaches. Particular emphasis is given to the perspective of molecular dynamics, what has been accomplished in this area to date, and how modeling could impact the PTR1-targeted drug design in the future.

摘要

蝶啶还原酶1(PTR1)是致病性锥虫特有的叶酸和蝶呤途径酶。作为一个经过验证的药物靶点,PTR1一直是近期研究工作的重点,这些研究旨在寻找针对利什曼病或昏睡病等人类寄生虫病的更有效治疗方法。以前以PTR1为中心的结构研究突出了该酶的特性,如活性位点周围的柔性区域、高度保守的结构水以及口袋性质和动力学的物种特异性差异,这些可能会影响天然底物和抑制剂的结合。此外,PTR1功能的几个方面,如底物抑制现象和酶同四聚体中配体结合协同性的水平,可能与整体酶动力学有关,在分子水平上还知之甚少。我们推测,未来的药物设计工作通过研究PTR1的局部和整体动力学来更好地理解这些现象,可能会受益匪浅。本综述强调了与基于结构的药物设计相关的PTR1结构和动力学的关键方面,这些方面可以通过建模方法有效地进行研究。特别强调了分子动力学的视角、该领域迄今为止所取得的成果,以及建模如何在未来影响以PTR1为靶点的药物设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f39e/10618315/1d3907523cbc/249_2023_1677_Fig1_HTML.jpg

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