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靶向疟原虫入侵蛋白 RH5 的 basigin 模拟抑制剂的设计。

Design of a basigin-mimicking inhibitor targeting the malaria invasion protein RH5.

机构信息

Department of Biomolecular Sciences, Weizmann Institute of Science, Rehovot, Israel.

Department of Biochemistry, University of Oxford, Oxford, UK.

出版信息

Proteins. 2020 Jan;88(1):187-195. doi: 10.1002/prot.25786. Epub 2019 Aug 2.

Abstract

Many human pathogens use host cell-surface receptors to attach and invade cells. Often, the host-pathogen interaction affinity is low, presenting opportunities to block invasion using a soluble, high-affinity mimic of the host protein. The Plasmodium falciparum reticulocyte-binding protein homolog 5 (RH5) provides an exciting candidate for mimicry: it is highly conserved and its moderate affinity binding to the human receptor basigin (K  ≥1 μM) is an essential step in erythrocyte invasion by this malaria parasite. We used deep mutational scanning of a soluble fragment of human basigin to systematically characterize point mutations that enhance basigin affinity for RH5 and then used Rosetta to design a variant within the sequence space of affinity-enhancing mutations. The resulting seven-mutation design exhibited 1900-fold higher affinity (K approximately 1 nM) for RH5 with a very slow binding off rate (0.23 h ) and reduced the effective Plasmodium growth-inhibitory concentration by at least 10-fold compared to human basigin. The design provides a favorable starting point for engineering on-rate improvements that are likely to be essential to reach therapeutically effective growth inhibition.

摘要

许多人类病原体利用宿主细胞表面受体附着并入侵细胞。通常,宿主-病原体相互作用的亲和力较低,这为使用宿主蛋白的可溶性高亲和力模拟物来阻止入侵提供了机会。疟原虫裂殖子结合蛋白同源物 5(RH5)为模拟提供了一个令人兴奋的候选物:它高度保守,其与人类受体 basigin 的中等亲和力结合(K  ≥1 μM)是这种疟原虫入侵红细胞的关键步骤。我们使用可溶性人 basigin 片段的深度突变扫描系统地描述了增强 basigin 与 RH5 亲和力的点突变,然后使用 Rosetta 设计了一个在亲和力增强突变序列空间内的变体。该变体具有 1900 倍更高的 RH5 亲和力(K 约为 1 nM),具有非常慢的结合解离速率(0.23 h ),与人类 basigin 相比,有效抑制疟原虫生长的浓度至少降低了 10 倍。该设计为工程设计提供了一个有利的起点,提高结合速率可能是达到治疗有效生长抑制所必需的。

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