衣藻 IC97 是鞭毛动力蛋白 f/I1 的中间链,是正常鞭毛和细胞运动所必需的。

IF 3.7 2区 生物学 Q2 MICROBIOLOGY
mSphere Pub Date : 2024-12-19 Epub Date: 2024-11-27 DOI:10.1128/msphere.00558-24
Ryosuke Yamamoto, Yui Tanaka, Shunsuke Orii, Kogiku Shiba, Kazuo Inaba, Takahide Kon
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引用次数: 0

摘要

运动鞭毛(又称 "运动纤毛")在低等和高等真核生物中发挥着各种重要作用,包括细胞运动和生育。鞭毛运动是由这些细胞器内的几种巨大的运动蛋白复合体--鞭毛动力蛋白驱动的。在这些鞭毛动力蛋白中,一种名为 "IDA f/I1 "的异源二聚体动力蛋白被证明在控制鞭毛波形方面特别重要,人类体内这种动力蛋白的缺陷会导致纤毛虫病,如鞭毛的多种形态异常和无精子症。IDA f/I1由许多亚基组成,包括两个HC(HCα和HCβ)和三个IC(IC140、IC138和IC97),在IDA f/I1的三个IC中,IC97在鞭毛运动中的确切分子功能尚不十分清楚。在本研究中,我们分离了一个缺乏 IC97 的衣藻突变体,并对其表型进行了分析。与野生型相比,ic97突变体的游动速度较慢,但保留了趋光性。进一步的分析表明,突变体的鞭毛跳动频率较低,两根(顺式和反式)鞭毛之间配合不当。此外,与野生型细胞相比,突变体细胞的游动路径相对较直。综上所述,我们的研究结果凸显了 IC97 在 IDA-f/I1 复合物中的正确组装对调控衣藻鞭毛和细胞运动的重要性,并为了解 IC97 在高等真核生物中的分子功能以及 IDA-f/I1 缺陷导致的人类纤毛虫病的致病机制提供了宝贵的见解:IDA f/I1是一种异源二聚体鞭毛动力蛋白,对鞭毛波形的调节尤为重要,其缺陷与人类纤毛虫病有关。IC97 是 IDA f/I1 进化保守的中间链,但 IC97 在鞭毛运动中的详细分子功能尚未阐明。在这项研究中,对之前未表征的衣藻 ic97 突变体进行的突变和生化分析表明,IC97 是正常鞭毛和细胞运动所必需的。特别是,IC97 似乎在控制鞭毛搏动频率和衣藻两个(顺式和反式)鞭毛之间的协调方面都发挥了重要作用。我们的研究结果为了解 IC97 对 IDA-f/I1 活性的调控以及 IDA-f/I1 缺陷导致的人类纤毛虫病的致病机制提供了重要信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chlamydomonas IC97, an intermediate chain of the flagellar dynein f/I1, is required for normal flagellar and cellular motility.

Motile flagella (also called "motile cilia") play a variety of important roles in lower and higher eukaryotes, including cellular motility and fertility. Flagellar motility is driven by several species of the gigantic motor-protein complexes, flagellar dyneins, that reside within these organelles. Among the flagellar-dynein species, a hetero-dimeric dynein called "IDA f/I1" has been shown to be particularly important in controlling the flagellar waveform, and defects in this dynein species in humans cause ciliopathies such as multiple morphological abnormalities of the flagella and asthenoteratozoospermia. IDA f/I1 is composed of many subunits, including two HCs (HCα and HCβ) and three ICs (IC140, IC138, and IC97), and among the three ICs of IDA f/I1, the exact molecular function(s) of IC97 in flagellar motility is not well understood. In this study, we isolated a Chlamydomonas mutant lacking IC97 and analyzed the phenotypes. The ic97 mutant phenocopied several aspects of the previously isolated IDA-f/I1-related mutants in Chlamydomonas and showed slow swimming compared to the wild type but retained the ability to phototaxis. Further analysis revealed that the mutant had low flagellar beat frequency and miscoordination between the two (cis- and trans-) flagella. In addition, the mutant cells swam in a comparatively straight path compared to the wild-type cells. Taken together, our results highlight the importance of proper assembly of IC97 in the IDA-f/I1 complex for the regulation of flagellar and cellular motility in Chlamydomonas and provide valuable insights into both the molecular functions of IC97 orthologs in higher eukaryotes and the pathogenetic mechanisms of human ciliopathies caused by IDA-f/I1 defects.

Importance: IDA f/I1 is a hetero-dimeric flagellar dynein that is particularly important for the regulation of flagellar waveform and whose defects are associated with human ciliopathies. IC97 is an evolutionarily conserved intermediate chain of IDA f/I1, but the detailed molecular functions of IC97 in flagellar motility have not been elucidated. In this study, mutational and biochemical analyses of the previously uncharacterized Chlamydomonas ic97 mutant revealed that IC97 is required for both the normal flagellar and cellular motility. In particular, IC97 appears to play an important role in both the control of flagellar beat frequency and the coordination between the two (cis- and trans-) flagella in Chlamydomonas. Our results provide important insights into the regulation of IDA-f/I1 activity by IC97 and the pathogenetic mechanisms of human ciliopathies caused by IDA-f/I1 defects.

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来源期刊
mSphere
mSphere Immunology and Microbiology-Microbiology
CiteScore
8.50
自引率
2.10%
发文量
192
审稿时长
11 weeks
期刊介绍: mSphere™ is a multi-disciplinary open-access journal that will focus on rapid publication of fundamental contributions to our understanding of microbiology. Its scope will reflect the immense range of fields within the microbial sciences, creating new opportunities for researchers to share findings that are transforming our understanding of human health and disease, ecosystems, neuroscience, agriculture, energy production, climate change, evolution, biogeochemical cycling, and food and drug production. Submissions will be encouraged of all high-quality work that makes fundamental contributions to our understanding of microbiology. mSphere™ will provide streamlined decisions, while carrying on ASM''s tradition for rigorous peer review.
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