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植物游动孢子对趋化物质表现出动向性运动行为。

Phytophthora zoospores display klinokinetic behaviour in response to a chemoattractant.

机构信息

Laboratory of Cell and Developmental Biology, Wageningen University & Research, Wageningen, the Netherlands.

Laboratory of Phytopathology, Wageningen University & Research, Wageningen, the Netherlands.

出版信息

PLoS Pathog. 2024 Sep 30;20(9):e1012577. doi: 10.1371/journal.ppat.1012577. eCollection 2024 Sep.

Abstract

Microswimmers are single-celled bodies powered by flagella. Typical examples are zoospores, dispersal agents of oomycete plant pathogens that are used to track down hosts and infect. Being motile, zoospores presumably identify infection sites using chemical cues such as sugars, alcohols and amino acids. With high-speed cameras we traced swimming trajectories of Phytophthora zoospores over time and quantified key trajectory parameters to investigate chemotactic responses. Zoospores adapt their native run-and-tumble swimming patterns in response to the amino acid glutamic acid by increasing the rate at which they turn. Simulations predict that tuneable tumble frequencies are sufficient to explain zoospore aggregation, implying positive klinokinesis. Zoospores thus exploit a retention strategy to remain at the plant surface once arriving there. Interference of G-protein mediated signalling affects swimming behaviour. Zoospores of a Phytophthora infestans G⍺-deficient mutant show higher tumbling frequencies but still respond and adapt to glutamic acid, suggesting chemoreception to be intact.

摘要

微游泳者是由鞭毛驱动的单细胞体。典型的例子是游动孢子,卵菌植物病原体的扩散剂,用于追踪宿主和感染。游动孢子是能动的,它们大概会使用化学信号(如糖、醇和氨基酸)来识别感染部位。我们使用高速摄像机追踪了一段时间内 Phytophthora 游动孢子的游动轨迹,并量化了关键轨迹参数,以研究趋化反应。游动孢子通过增加它们转弯的速度来适应对氨基酸谷氨酸的天然跑动和翻滚游泳模式。模拟预测,可调翻滚频率足以解释游动孢子的聚集,这意味着正趋光性。因此,游动孢子一旦到达植物表面,就会利用一种保留策略留在那里。G 蛋白介导的信号转导的干扰会影响游动行为。缺乏 Phytophthora infestans G ⍺ 的游动孢子突变体显示出更高的翻滚频率,但仍对谷氨酸做出反应并适应,表明它们的化学感受功能完好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b40f/11554144/076186a876f2/ppat.1012577.g001.jpg

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