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芽殖簇虫(顶复门)的运动性:线虫 Siedleckia nematoides 细胞骨架成分的天然及药物诱导组织

Motility in blastogregarines (Apicomplexa): Native and drug-induced organisation of Siedleckia nematoides cytoskeletal elements.

作者信息

Valigurová Andrea, Vaškovicová Naděžda, Diakin Andrei, Paskerova Gita G, Simdyanov Timur G, Kováčiková Magdaléna

机构信息

Department of Botany and Zoology, Faculty of Science, Masaryk University, Kotlářská 2, Brno, Czech Republic.

Institute of Scientific Instruments of the CAS, v. v. i., Královopolská 147, Brno, Czech Republic.

出版信息

PLoS One. 2017 Jun 22;12(6):e0179709. doi: 10.1371/journal.pone.0179709. eCollection 2017.

Abstract

Recent studies on motility of Apicomplexa concur with the so-called glideosome concept applied for apicomplexan zoites, describing a unique mechanism of substrate-dependent gliding motility facilitated by a conserved form of actomyosin motor and subpellicular microtubules. In contrast, the gregarines and blastogregarines exhibit different modes and mechanisms of motility, correlating with diverse modifications of their cortex. This study focuses on the motility and cytoskeleton of the blastogregarine Siedleckia nematoides Caullery et Mesnil, 1898 parasitising the polychaete Scoloplos cf. armiger (Müller, 1776). The blastogregarine moves independently on a solid substrate without any signs of gliding motility; the motility in a liquid environment (in both the attached and detached forms) rather resembles a sequence of pendular, twisting, undulation, and sometimes spasmodic movements. Despite the presence of key glideosome components such as pellicle consisting of the plasma membrane and the inner membrane complex, actin, myosin, subpellicular microtubules, micronemes and glycocalyx layer, the motility mechanism of S. nematoides differs from the glideosome machinery. Nevertheless, experimental assays using cytoskeletal probes proved that the polymerised forms of actin and tubulin play an essential role in the S. nematoides movement. Similar to Selenidium archigregarines, the subpellicular microtubules organised in several layers seem to be the leading motor structures in blastogregarine motility. The majority of the detected actin was stabilised in a polymerised form and appeared to be located beneath the inner membrane complex. The experimental data suggest the subpellicular microtubules to be associated with filamentous structures (= cross-linking protein complexes), presumably of actin nature.

摘要

近期关于顶复门原虫运动性的研究与应用于顶复门动合子的所谓滑行体概念一致,描述了一种由保守形式的肌动球蛋白马达和表膜下微管促进的独特的底物依赖性滑行运动机制。相比之下,簇虫和芽簇虫表现出不同的运动模式和机制,这与其皮层的多种修饰相关。本研究聚焦于寄生于多毛纲动物似武装盘管虫(Scoloplos cf. armiger,(Müller, 1776))的芽簇虫秀丽西德莱基虫(Siedleckia nematoides Caullery et Mesnil, 1898)的运动性和细胞骨架。芽簇虫在固体底物上独立移动,没有任何滑行运动的迹象;在液体环境中的运动(无论是附着形式还是游离形式)更类似于一系列摆动、扭转、波动,有时还有痉挛性运动。尽管存在关键的滑行体成分,如由质膜和内膜复合体组成的表膜、肌动蛋白、肌球蛋白、表膜下微管、微线体和糖萼层,但秀丽西德莱基虫的运动机制与滑行体机制不同。然而,使用细胞骨架探针的实验分析证明,肌动蛋白和微管蛋白的聚合形式在秀丽西德莱基虫的运动中起着至关重要的作用。与硒簇虫类原虫相似,以多层形式组织的表膜下微管似乎是芽簇虫运动中的主要运动结构。检测到的大多数肌动蛋白以聚合形式稳定存在,并且似乎位于内膜复合体下方。实验数据表明,表膜下微管与丝状结构(=交联蛋白复合体)相关,推测为肌动蛋白性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/536a/5480980/48dc52d2046b/pone.0179709.g001.jpg

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