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触压感:真菌的触觉。

Thigmo Responses: The Fungal Sense of Touch.

机构信息

MRC Centre for Medical Mycology, University of Aberdeen, School of Medicine, Medical Sciences & Nutrition, Institute of Medical Sciences, Foresterhill, Aberdeen, Aberdeenshire AB25 2ZD, United Kingdom.

出版信息

Microbiol Spectr. 2017 Apr;5(2). doi: 10.1128/microbiolspec.FUNK-0040-2016.

DOI:10.1128/microbiolspec.FUNK-0040-2016
PMID:28884680
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11687469/
Abstract

The growth and development of most fungi take place on a two-dimensional surface or within a three-dimensional matrix. The fungal sense of touch is therefore critical for fungi in the interpretation of their environment and often signals the switch to a new developmental state. Contact sensing, or thigmo-based responses, include thigmo differentiation, such as the induction of invasion structures by plant pathogens in response to topography; thigmonasty, where contact with a motile prey rapidly triggers its capture; and thigmotropism, where the direction of hyphal growth is guided by physical features in the environment. Like plants and some bacteria, fungi grow as walled cells. Despite the well-demonstrated importance of thigmo responses in numerous stages of fungal growth and development, it is not known how fungal cells sense contact through the relatively rigid structure of the cell wall. However, while sensing mechanisms at the molecular level are not entirely understood, the downstream signaling pathways that are activated by contact sensing are being elucidated. In the majority of cases, the response to contact is complemented by chemical cues and both are required, either sequentially or simultaneously, to elicit normal developmental responses. The importance of a sense of touch in the lifestyles and development of diverse fungi is highlighted in this review, and the candidate molecular mechanisms that may be involved in fungal contact sensing are discussed.

摘要

大多数真菌的生长和发育都发生在二维表面或三维基质中。因此,真菌的触觉对真菌来说至关重要,它常常能指示真菌进入新的发育状态。接触感应,或基于触压的反应,包括触压分化,例如植物病原体为响应地形而诱导入侵结构的形成;触压屈性运动,即与移动的猎物接触会迅速触发其被捕食;以及向触性,即菌丝生长的方向由环境中的物理特征引导。与植物和一些细菌一样,真菌作为有细胞壁的细胞生长。尽管触压反应在真菌生长和发育的众多阶段都具有重要作用已得到充分证明,但目前尚不清楚真菌细胞如何通过细胞壁相对刚性的结构来感知接触。然而,尽管分子水平上的感应机制尚未完全了解,但通过接触感应激活的下游信号通路正在被阐明。在大多数情况下,对接触的反应是由化学线索补充的,并且需要这两者(顺序或同时)来引发正常的发育反应。本文综述了触觉在各种真菌生活方式和发育中的重要性,并讨论了可能参与真菌接触感应的候选分子机制。