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利用炼金术模拟设计针对胸苷酸合成酶的选择性抑制剂。

Selective Inhibitor Design against Thymidylate Synthase of Using Alchemical Simulations.

作者信息

Sengupta Pallav, Satpati Priyadarshi

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati, Assam 781039, India.

出版信息

ACS Omega. 2025 Apr 4;10(14):13966-13976. doi: 10.1021/acsomega.4c10518. eCollection 2025 Apr 15.

Abstract

Thymidylate synthase is an essential enzyme that catalyzes the conversion of deoxyuridine monophosphate (dUMP) to deoxythymidine monophosphate (dTMP). Thymidylate synthase from (MtbThyX) recognizes the deprotonated substrate dUMP (ionized at N3, charge = -3) involving the cationic side chain of Arg199, whereas the human analogue (hThyA) selects the natural substrate dUMP (charge = -2) by involving the polar side chain of Asn226 in the binding pocket. Distinctly different protonation states of the substrate and the catalytic pocket architecture make MtbThyX an attractive drug target for combating . Fluorodeoxyuridylate (FdUMP) is a known inhibitor of thymidylate synthase, which is severely limited by poor selectivity (it is more potent against hThyA relative to MtbThyX). Using FdUMP as a template, we designed three drug-like ligands, L1, L2, and L3, by (1) removing the proton from the Watson-Crick edge and (2) substituting the ketone/hydroxyl group with fluorine and/or a carboxylic moiety. The absence of a proton on the N3 atom of the ligand is intended to ensure selectivity by favoring MtbThyX binding (skipping the N3 ionization requirement) but penalizing hThyA binding (disrupting the interaction with Asn226). Ionization of the carboxyl group in the ligands was expected to increase the affinity in the cationic binding pocket of MtbThyX. Alchemical simulations confirmed that the designed ligands are strongly favored and disfavored relative to the substrate (dUMP) by MtbThyX and hThyA, respectively. In contrast to hThyA, the catalytic pocket of MtbThyX proved to be relatively dry and stabilized the relatively compact conformation of the ligand (which had a noticeable effect on sugar puckering). Favorable protein-ligand electrostatic interactions in the dry MtbThyX pocket strongly favored ligand binding. In contrast, the interaction between the Watson-Crick edge of the ligands and hThyA was compromised, resulting in water exposure. Ligand L2 is particularly advantageous for its highest affinity for MtbThyX and weak affinity for hThyA. The L2:MtbThyX complex is stabilized by a new salt-bridge interaction (COO of L2···Arg107 of protein) and a bridging water molecule (between COO of L2 and E92 of protein) in the binding pocket. Moreover, our estimated p of +4.5 units of N3 (dUMP) in the MtbThyX catalytic pocket indicated the strong acidic nature of the uracil, corroborating previous experimental and computational claims. These findings provide insights into the protein-ligand binding affinity in atomic detail and a rational approach for inhibitor design against MtbThyX.

摘要

胸苷酸合成酶是一种重要的酶,它催化脱氧尿苷单磷酸(dUMP)转化为脱氧胸苷单磷酸(dTMP)。结核分枝杆菌胸苷酸合成酶(MtbThyX)识别去质子化的底物dUMP(在N3处离子化,电荷=-3),涉及Arg199的阳离子侧链,而人类类似物(hThyA)通过结合口袋中Asn226的极性侧链选择天然底物dUMP(电荷=-2)。底物截然不同的质子化状态和催化口袋结构使MtbThyX成为抗结核的一个有吸引力的药物靶点。氟脱氧尿苷酸(FdUMP)是一种已知的胸苷酸合成酶抑制剂,但其选择性很差(相对于MtbThyX,它对hThyA的抑制作用更强),这严重限制了其应用。以FdUMP为模板,我们设计了三种类药物配体L1、L2和L3,方法是:(1)从沃森-克里克边缘去除质子;(2)用氟和/或羧基部分取代酮/羟基。配体N3原子上没有质子旨在通过促进MtbThyX结合(跳过N3离子化要求)来确保选择性,但不利于hThyA结合(破坏与Asn226的相互作用)。预计配体中羧基的离子化会增加在MtbThyX阳离子结合口袋中的亲和力。炼金术模拟证实,设计的配体分别被MtbThyX和hThyA相对于底物(dUMP)强烈偏好和排斥。与hThyA不同,MtbThyX的催化口袋相对干燥,稳定了配体相对紧凑的构象(这对糖环皱折有显著影响)。干燥的MtbThyX口袋中有利的蛋白质-配体静电相互作用强烈促进配体结合。相反,配体的沃森-克里克边缘与hThyA之间的相互作用受到损害,导致水暴露。配体L2因其对MtbThyX的最高亲和力和对hThyA的弱亲和力而特别有利。L2与MtbThyX的复合物通过结合口袋中的一种新的盐桥相互作用(L2的COO···蛋白质的Arg107)和一个桥连水分子(在L2的COO和蛋白质的E92之间)而稳定。此外,我们估计MtbThyX催化口袋中N3(dUMP)的pKa为+4.5个单位,表明尿嘧啶具有强酸性,这证实了先前的实验和计算结果。这些发现为蛋白质-配体结合亲和力提供了原子水平的详细见解,并为针对MtbThyX的抑制剂设计提供了一种合理的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3122/12004180/7e13def80f64/ao4c10518_0001.jpg

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