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Direct manipulation of malaria parasites with optical tweezers reveals distinct functions of plasmodium surface proteins

机译:用光学镊子直接操纵疟疾寄生虫揭示了疟原虫表面蛋白的独特功能

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Figure Persented: Plasmodium sporozoite motility is essential for establishing malaria infections. It depends on initial adhesion to a substrate as well as the continuous turnover of discrete adhesion sites. Adhesion and motility are mediated by a dynamic actin cytoskeleton and surface proteins. The mode of adhesion formation and the integration of adhesion forces into fast and continuous forward locomotion remain largely unknown. Here, we use optical tweezers to directly trap individual parasites and probe adhesion formation. We find that sporozoites lacking the surface proteins TRAP and S6 display distinct defects in initial adhesion; trap(-) sporozoites adhere preferentially with their front end, while s6(-) sporozoites show no such preference. The cohesive strength of the initial adhesion site is differently affected by actin filament depolymerization at distinct adhesion sites along the parasite for trap(-) and s6(-) sporozoites. These spatial differences between TRAP and S6 in their functional interaction with actin filaments show that these proteins have nonredundant roles during adhesion and motility. We suggest that complex protein-protein interactions and signaling events govern the regulation of parasite gliding at different sites along the parasite. Investigating how these events are coordinated will be essential for our understanding of sporozoite gliding motility, which is crucial for malaria infection. Laser tweezers will be a valuable part of the toolset.
机译:坚持认为:疟原虫子孢子的蠕动对于建立疟疾感染至关重要。它取决于对基材的初始粘附力以及不连续粘附位点的连续周转。粘附和运动是由动态肌动蛋白细胞骨架和表面蛋白介导的。粘附形成的模式和粘附力整合到快速连续的向前运动中仍然是未知的。在这里,我们使用光学镊子直接捕获单个寄生虫并探测粘附形成。我们发现缺乏表面蛋白TRAP和S6的子孢子在初始粘附中显示出明显的缺陷。 trap(-)子孢子优先与其前端粘附,而s6(-)子孢子则没有这种偏好。初始黏附位点的内聚强度受trap(-)和s6(-)子孢子寄生在不同的黏附位点的肌动蛋白丝解聚作用的影响不同。 TRAP和S6与肌动蛋白丝的功能相互作用中的这些空间差异表明,这些蛋白在黏附和运动过程中具有非冗余作用。我们建议复杂的蛋白质-蛋白质相互作用和信号事件控制寄生虫沿着寄生虫的不同位置滑行的调节。研究如何协调这些事件对于我们理解子孢子滑行运动至关重要,这对于疟疾感染至关重要。激光镊子将成为工具集的重要组成部分。

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