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疟原虫热休克蛋白 70-x ATP 酶结构域与化学片段复合物的结构,确定了保守和独特的结合位点。

Structures of the Plasmodium falciparum heat-shock protein 70-x ATPase domain in complex with chemical fragments identify conserved and unique binding sites.

机构信息

Department of Biochemistry, University of Oxford, South Parks Road, Oxford OX1 3QU, United Kingdom.

出版信息

Acta Crystallogr F Struct Biol Commun. 2021 Aug 1;77(Pt 8):262-268. doi: 10.1107/S2053230X21007378. Epub 2021 Jul 28.

Abstract

Plasmodium falciparum invades erythrocytes and extensively modifies them in a manner that increases the virulence of this malaria parasite. A single heat-shock 70 kDa-type chaperone, PfHsp70-x, is among the parasite proteins exported to the host cell. PfHsp70-x assists in the formation of a key protein complex that underpins parasite virulence and supports parasite growth during febrile episodes. Previous work resolved the crystallographic structures of the PfHsp70-x ATPase and substrate-binding domains, and showed them to be highly similar to those of their human counterparts. Here, 233 chemical fragments were screened for binding to the PfHsp70-x ATPase domain, resulting in three crystallographic structures of this domain in complex with ligands. Two binding sites were identified, with most ligands binding proximal to the ATPase nucleotide-binding pocket. Although amino acids participating in direct ligand interactions are conserved between the parasite and human erythrocytic chaperones, one nonconserved residue is also present near the ligand. This work suggests that PfHsp70-x features binding sites that may be exploitable by small-molecule ligands towards the specific inhibition of the parasite chaperone.

摘要

疟原虫恶性疟原虫侵入红细胞,并以增加这种疟原虫毒力的方式对其进行广泛修饰。一种单一的热休克 70 kDa 型伴侣蛋白 PfHsp70-x 是被输出到宿主细胞的寄生虫蛋白之一。PfHsp70-x 有助于形成一个关键的蛋白复合物,该复合物是寄生虫毒力的基础,并在发热期支持寄生虫的生长。以前的工作解析了 PfHsp70-x ATP 酶和底物结合结构域的晶体结构,并表明它们与人源对应物非常相似。在这里,筛选了 233 个化学片段与 PfHsp70-x ATP 酶结构域结合,得到了三个与配体结合的该结构域的晶体结构。鉴定了两个结合位点,大多数配体靠近 ATP 酶核苷酸结合口袋结合。尽管参与直接配体相互作用的氨基酸在寄生虫和人类红细胞伴侣之间是保守的,但在配体附近也存在一个非保守残基。这项工作表明 PfHsp70-x 具有结合位点,这些结合位点可能可被小分子配体利用,从而特异性抑制寄生虫伴侣。

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