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两种疟原虫表面阴离子通道抑制剂协同杀灭疟原虫

Synergistic Malaria Parasite Killing by Two Types of Plasmodial Surface Anion Channel Inhibitors.

作者信息

Pain Margaret, Fuller Alexandra W, Basore Katherine, Pillai Ajay D, Solomon Tsione, Bokhari Abdullah A B, Desai Sanjay A

机构信息

The Laboratory of Malaria and Vector Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Rockville, Maryland, United States of America.

出版信息

PLoS One. 2016 Feb 11;11(2):e0149214. doi: 10.1371/journal.pone.0149214. eCollection 2016.

Abstract

Malaria parasites increase their host erythrocyte's permeability to a broad range of ions and organic solutes. The plasmodial surface anion channel (PSAC) mediates this uptake and is an established drug target. Development of therapies targeting this channel is limited by several problems including interactions between known inhibitors and permeating solutes that lead to incomplete channel block. Here, we designed and executed a high-throughput screen to identify a novel class of PSAC inhibitors that overcome this solute-inhibitor interaction. These new inhibitors differ from existing blockers and have distinct effects on channel-mediated transport, supporting a model of two separate routes for solute permeation though PSAC. Combinations of inhibitors specific for the two routes had strong synergistic action against in vitro parasite propagation, whereas combinations acting on a single route produced only additive effects. The magnitude of synergism depended on external nutrient concentrations, consistent with an essential role of the channel in parasite nutrient acquisition. The identified inhibitors will enable a better understanding of the channel's structure-function and may be starting points for novel combination therapies that produce synergistic parasite killing.

摘要

疟原虫会增加其宿主红细胞对多种离子和有机溶质的通透性。疟原虫表面阴离子通道(PSAC)介导这种摄取,并且是一个既定的药物靶点。针对该通道的疗法开发受到几个问题的限制,包括已知抑制剂与渗透溶质之间的相互作用,这会导致通道阻断不完全。在此,我们设计并实施了一项高通量筛选,以鉴定一类新型的PSAC抑制剂,这类抑制剂可克服这种溶质-抑制剂相互作用。这些新抑制剂与现有阻滞剂不同,对通道介导的转运具有独特影响,支持溶质通过PSAC渗透的两条独立途径的模型。针对这两条途径的特异性抑制剂组合对体外寄生虫繁殖具有强烈的协同作用,而作用于单一途径的组合仅产生相加效应。协同作用的程度取决于外部营养物质浓度,这与该通道在寄生虫营养获取中的重要作用一致。所鉴定的抑制剂将有助于更好地理解该通道的结构-功能,并且可能是产生协同杀寄生虫作用的新型联合疗法的起点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6087/4750852/b9f3cadb6cd9/pone.0149214.g001.jpg

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