进化多样的真菌动物孢子因超微结构而呈现出截然不同的游动模式

IF 8.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Luis Javier Galindo, Thomas A. Richards, Jasmine A. Nirody
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引用次数: 0

摘要

动物孢子真菌又称糜烂真菌,产生带有鞭毛游动尾部的单细胞运动孢子(动物孢子)1,2 。这些真菌是水生食物网的关键组成部分,既是病原体,也是噬菌体和猎物3,4,5,6,7,8。6,9在这里,我们追踪了糜烂真菌门(Chytridiomycota)和高疫霉菌门(Blastocladiomycota)七个目中 12 种进化上不同的动物真菌的动物孢子的游动模式。我们报告了与这些孢子的细胞骨架超微结构相关的两种主要游动模式。具体来说,我们发现没有主要胞质微管蛋白成分的物种以环状方式游动,而胞质微管蛋白结构突出的物种则以类似于随机行走(移动-停止-重定向-移动)的模式游动。我们通过对所有 12 个物种进行荧光共聚焦显微镜观察来确认细胞骨架结构。然后,我们用稳定微管蛋白(紫杉醇)和解聚微管蛋白(nocodazole)的药理化合物处理具有不同游泳行为和细胞质-细胞骨架排列的代表性物种。我们观察到,当用nocodazole处理 "随机行走 "物种时,它们的游泳行为变成了环游模式。经nocodazole处理的动物孢子的共聚焦成像显示,这些细胞保持着鞭毛管蛋白结构,但缺乏其特有的细胞质管蛋白结构。我们的数据表明,动物孢子进行 "复杂 "随机行走运动的能力与突出的细胞质微管蛋白结构的存在有关,并表明在多种动物孢子真菌中,细胞学、感觉系统和游泳行为之间存在联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evolutionarily diverse fungal zoospores show contrasting swimming patterns specific to ultrastructure

Evolutionarily diverse fungal zoospores show contrasting swimming patterns specific to ultrastructure

Zoosporic fungi, also called chytrids, produce single-celled motile spores with flagellar swimming tails (zoospores).1,2 These fungi are key components of aquatic food webs, acting as pathogens, saprotrophs, and prey.3,4,5,6,7,8 Little is known about the swimming behavior of fungal zoospores, a crucial factor governing dispersal, biogeographical range, ecological function, and infection dynamics.6,9 Here, we track the swimming patterns of zoospores from 12 evolutionarily divergent species of zoosporic fungi from across seven orders of the Chytridiomycota and the Blastocladiomycota. We report two major swimming patterns that correlate with the cytoskeletal ultrastructure of these zoospores. Specifically, we show that species without major cytoplasmic tubulin components swim in a circular fashion, while species with prominent cytoplasmic tubulin structures swim in a pattern akin to a random walk (move-stop-redirect-move). We confirm cytoskeletal architecture by performing fluorescence confocal microscopy across all 12 species. We then treat representative species with variant swimming behaviors and cytoplasmic-cytoskeletal arrangements with tubulin-stabilizing (Taxol) and depolymerizing (nocodazole) pharmacological compounds. We observed that when treating the “random walk” species with nocodazole, their swimming behavior changed to a circular-swimming pattern. Confocal imaging of the nocodazole-treated zoospores demonstrates that these cells maintain flagellum tubulin structures but lack their characteristic cytoplasmic tubulin structures. Our data demonstrate that the capability of zoospores to perform “complex” random-walk movement is linked to the presence of prominent cytoplasmic tubulin structures and suggest a link between cytology, sensory systems, and swimming behavior in a diversity of zoosporic fungi.

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来源期刊
Current Biology
Current Biology 生物-生化与分子生物学
CiteScore
11.80
自引率
2.20%
发文量
869
审稿时长
46 days
期刊介绍: Current Biology is a comprehensive journal that showcases original research in various disciplines of biology. It provides a platform for scientists to disseminate their groundbreaking findings and promotes interdisciplinary communication. The journal publishes articles of general interest, encompassing diverse fields of biology. Moreover, it offers accessible editorial pieces that are specifically designed to enlighten non-specialist readers.
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