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纤毛轴丝内陷和降解在壶菌中的作用。

Cilium axoneme internalization and degradation in chytrid fungi.

机构信息

Department of Biology, Stanford University, Stanford, California, USA.

Department of Genetics, Stanford University, Stanford, California, USA.

出版信息

Cytoskeleton (Hoboken). 2020 Oct;77(10):365-378. doi: 10.1002/cm.21637. Epub 2020 Nov 18.

Abstract

Loss of the cilium is important for cell cycle progression and certain developmental transitions. Chytrid fungi are a group of basal fungi that have retained centrioles and cilia, and they can disassemble their cilia via axoneme internalization as part of the transition from free-swimming spores to sessile sporangia. While this type of cilium disassembly has been observed in many single-celled eukaryotes, it has not been well characterized because it is not observed in common model organisms. To better characterize cilium disassembly via axoneme internalization, we focused on chytrids Rhizoclosmatium globosum and Spizellomyces punctatus to represent two lineages of chytrids with different motility characteristics. Our results show that each chytrid species can reel in its axoneme into the cell body along its cortex on the order of minutes, while S. punctatus has additional faster ciliary compartment loss and lash-around mechanisms. S. punctatus retraction can also occur away from the cell cortex and is partially actin dependent. Post-internalization, the tubulin of the axoneme is degraded in both chytrids over the course of about 2 hr. Axoneme disassembly and axonemal tubulin degradation are both partially proteasome dependent. Overall, chytrid cilium disassembly is a fast process that separates axoneme internalization and degradation.

摘要

纤毛的丧失对于细胞周期进程和某些发育转变很重要。壶菌是一组保留了中心粒和纤毛的基础真菌,它们可以通过中心体轴丝内化来分解纤毛,作为从自由游动的孢子向固着的孢子囊转变的一部分。虽然这种类型的纤毛解聚在许多单细胞真核生物中已经被观察到,但由于在常见的模式生物中没有观察到,因此它的特征还没有得到很好的描述。为了更好地描述通过中心体轴丝内化进行的纤毛解聚,我们专注于壶菌 Rhizoclosmatium globosum 和 Spizellomyces punctatus,以代表具有不同运动特征的两种壶菌谱系。我们的结果表明,每个壶菌物种都可以在几分钟内将其轴丝沿着细胞皮层卷回到细胞体中,而 S. punctatus 则具有额外的更快的纤毛室损失和鞭毛环绕机制。S. punctatus 的缩回也可以发生在远离细胞皮层的地方,并且部分依赖于肌动蛋白。内化后,在大约 2 小时的过程中,两种壶菌中的轴丝微管蛋白都会被降解。轴丝解聚和轴丝微管蛋白降解都部分依赖于蛋白酶体。总的来说,壶菌纤毛解聚是一个快速的过程,将中心体轴丝内化和降解分开。

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