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小分子肌动蛋白相关蛋白 2/3 复合物抑制剂的结构特征分析及计算机辅助优化,该抑制剂是细胞骨架肌动蛋白的关键调节因子。

Structural characterization and computer-aided optimization of a small-molecule inhibitor of the Arp2/3 complex, a key regulator of the actin cytoskeleton.

机构信息

Department of Chemistry, University of Oregon, Eugene, OR 97403-1253, USA.

出版信息

ChemMedChem. 2012 Jul;7(7):1286-94. doi: 10.1002/cmdc.201200104. Epub 2012 May 23.

Abstract

CK-666 (1) is a recently discovered small-molecule inhibitor of the actin-related protein 2/3 (Arp2/3) complex, a key actin cytoskeleton regulator with roles in bacterial pathogenesis and cancer cell motility. Although 1 is commercially available, the crystal structure of Arp2/3 complex with 1 bound has not been reported, making its mechanism of action uncertain. Furthermore, its relatively low potency increases its potential for off-target effects in vivo, complicating interpretation of its influence in cell biological studies and precluding its clinical use. Herein we report the crystal structure of 1 bound to Arp2/3 complex, which reveals that 1 binds between the Arp2 and Arp3 subunits to stabilize the inactive conformation of the complex. Based on the crystal structure, we used computational docking and free-energy perturbation calculations of monosubstituted derivatives of 1 to guide optimization efforts. Biochemical assays of ten newly synthesized compounds led to the identification of compound 2, which exhibits a threefold increase in inhibitory activity in vitro relative to 1. In addition, our computational analyses unveiled a surface groove at the interface of the Arp2 and Arp3 subunits that can be exploited for additional structure-based optimization.

摘要

CK-666(1)是一种新发现的小分子肌动蛋白相关蛋白 2/3(Arp2/3)复合物抑制剂,该复合物是肌动蛋白细胞骨架的关键调节剂,在细菌发病机制和癌细胞运动中发挥作用。尽管 1 可商购获得,但与 1 结合的 Arp2/3 复合物的晶体结构尚未报道,其作用机制尚不确定。此外,其相对较低的效力增加了其在体内产生脱靶效应的可能性,这使得其在细胞生物学研究中的影响难以解释,并排除了其在临床上的使用。在此,我们报告了 1 与 Arp2/3 复合物结合的晶体结构,该结构揭示了 1 结合在 Arp2 和 Arp3 亚基之间,以稳定复合物的非活性构象。基于晶体结构,我们使用计算对接和 1 的单取代衍生物的自由能扰动计算来指导优化工作。对十种新合成化合物的生化分析导致了化合物 2 的鉴定,其在体外的抑制活性比 1 提高了三倍。此外,我们的计算分析揭示了 Arp2 和 Arp3 亚基之间界面上的一个表面凹槽,可用于进一步的基于结构的优化。

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