Molecular sensors reveal the mechano-chemical response of Phytophthora infestans walls and membranes to mechanical and chemical stress

Q1 Immunology and Microbiology Cell Surface Pub Date : 2022-12-01 DOI:10.1016/j.tcsw.2021.100071
Lucile Michels , Jochem Bronkhorst , Michiel Kasteel , Djanick de Jong , Bauke Albada , Tijs Ketelaar , Francine Govers , Joris Sprakel
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引用次数: 2

Abstract

Phytophthora infestans, causal agent of late blight in potato and tomato, remains challenging to control. Unravelling its biomechanics of host invasion, and its response to mechanical and chemical stress, could provide new handles to combat this devastating pathogen. Here we introduce two fluorescent molecular sensors, CWP-BDP and NR12S, that reveal the micromechanical response of the cell wall-plasma membrane continuum in P. infestans during invasive growth and upon chemical treatment. When visualized by live-cell imaging, CWP-BDP reports changes in cell wall (CW) porosity while NR12S reports variations in chemical polarity and lipid order in the plasma membrane (PM). During invasive growth, mechanical interactions between the pathogen and a surface reveal clear and localized changes in the structure of the CW. Moreover, the molecular sensors can reveal the effect of chemical treatment to CW and/or PM, thereby revealing the site-of-action of crop protection agents. This mechano-chemical imaging strategy resolves, non-invasively and with high spatio-temporal resolution, how the CW-PM continuum adapts and responds to abiotic stress, and provides information on the dynamics and location of cellular stress responses for which, to date, no other methods are available.

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分子传感器揭示了疫霉菌壁和膜对机械和化学胁迫的机械化学反应
马铃薯和番茄晚疫病的病原菌疫霉(Phytophthora infestans)的防治仍然具有挑战性。揭示宿主入侵的生物力学,以及它对机械和化学压力的反应,可以为对抗这种破坏性病原体提供新的处理方法。本文介绍了两种荧光分子传感器,CWP-BDP和NR12S,它们揭示了感染假单胞菌在侵袭生长和化学处理过程中细胞壁-质膜连续体的微力学响应。当通过活细胞成像可视化时,CWP-BDP报告细胞壁(CW)孔隙度的变化,而NR12S报告质膜(PM)中化学极性和脂质顺序的变化。在侵入性生长过程中,病原体与表面之间的机械相互作用揭示了CW结构的明确和局部变化。此外,分子传感器可以揭示化学处理对CW和/或PM的影响,从而揭示作物保护剂的作用部位。这种机械化学成像策略以非侵入性和高时空分辨率解决了CW-PM连续体如何适应和响应非生物应激,并提供了迄今为止没有其他方法可用的细胞应激反应的动态和位置信息。
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来源期刊
Cell Surface
Cell Surface Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
6.10
自引率
0.00%
发文量
18
审稿时长
49 days
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