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甲硫氨酸氨基肽酶金属形式选择性抑制的结构分析

Structural analysis of metalloform-selective inhibition of methionine aminopeptidase.

作者信息

Xie Sheng Xue, Huang Wei Jun, Ma Ze Qiang, Huang Min, Hanzlik Robert P, Ye Qi Zhuang

机构信息

High Throughput Screening Laboratory, University of Kansas, Lawrence, Kansas 66045, USA.

出版信息

Acta Crystallogr D Biol Crystallogr. 2006 Apr;62(Pt 4):425-32. doi: 10.1107/S0907444906003878. Epub 2006 Mar 18.

DOI:10.1107/S0907444906003878
PMID:16552144
Abstract

One of the challenges in the development of methionine aminopeptidase (MetAP) inhibitors as antibacterial and anticancer agents is to define the metal ion actually used by MetAP in vivo and to discover MetAP inhibitors that can inhibit the metalloform that is relevant in vivo. Two distinct classes of novel nonpeptidic MetAP inhibitors that are not only potent but also highly selective for either the Mn(II) or Co(II) form have been identified. Three crystal structures of Escherichia coli MetAP complexed with the metalloform-selective inhibitors 5-(2,5-dichlorophenyl)furan-2-carboxylic acid (2), 5-[2-(trifluoromethyl)phenyl]furan-2-carboxylic acid (3) and N-cyclopentyl-N-(thiazol-2-yl)oxalamide (4) have been solved and analysis of these structures has revealed the structural basis for their metalloform-selective inhibition. The Mn(II)-form selective inhibitors (2) and (3) both use their carboxylate group to coordinate with the two Mn(II) ions at the dinuclear metal site and both adopt a non-coplanar conformation for the two aromatic rings. The unique coordination geometry of these inhibitors may determine their Mn(II)-form selectivity. In contrast, the Co(II)-form selective inhibitor (4) recruits an unexpected third metal ion, forming a trimetallic enzyme-metal-inhibitor complex. Thus, an important factor in the selectivity of (4) for the Co(II) form may be a consequence of a greater preference for a softer N,O-donor ligand for the softer Co(II).

摘要

将甲硫氨酸氨肽酶(MetAP)抑制剂开发为抗菌和抗癌药物面临的挑战之一是确定MetAP在体内实际使用的金属离子,并发现能够抑制体内相关金属形式的MetAP抑制剂。现已鉴定出两类不同的新型非肽类MetAP抑制剂,它们不仅效力强大,而且对Mn(II)或Co(II)形式具有高度选择性。已解析了大肠杆菌MetAP与金属形式选择性抑制剂5-(2,5-二氯苯基)呋喃-2-羧酸(2)、5-[2-(三氟甲基)苯基]呋喃-2-羧酸(3)和N-环戊基-N-(噻唑-2-基)草酰胺(4)形成的三种晶体结构,对这些结构的分析揭示了它们金属形式选择性抑制的结构基础。Mn(II)形式选择性抑制剂(2)和(3)均利用其羧基与双核金属位点的两个Mn(II)离子配位,且两个芳香环均呈非共平面构象。这些抑制剂独特的配位几何结构可能决定了它们对Mn(II)形式的选择性。相比之下,Co(II)形式选择性抑制剂(4)引入了一个意想不到的第三金属离子,形成了三金属酶-金属-抑制剂复合物。因此,(4)对Co(II)形式选择性的一个重要因素可能是较软的Co(II)对较软的N,O供体配体有更大偏好的结果。

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