生理离子强度和拥挤对运动蛋白-1运动的影响。

IF 2 4区 生物学 Q4 CELL BIOLOGY Cell structure and function Pub Date : 2025-01-08 DOI:10.1247/csf.24074
Misaki Sagawa, Kazuhiro Oiwa, Hiroaki Kojima, Ken'ya Furuta, Keitaro Shibata
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引用次数: 0

摘要

生物分子马达的运动性通常是通过体外重构系统来分析的,该系统使用从器官分离和纯化的马达或在培养细胞中表达的马达。生物分子马达在细胞内的行为经常被报道与体外重建系统中观察到的不一致。尽管这种差异归因于离子强度和细胞内拥挤的差异,但了解这些参数如何影响马达的运动性仍然具有挑战性。在这篇报道中,我们研究了细胞内拥挤在高离子强度下对肌动蛋白机械性能的影响,这种高离子强度与细胞质相当。最初,我们通过使用缺乏载物结合结构域的驱动蛋白马达来表征细胞中的粘度。然后,我们使用聚乙二醇在体外创造一个与细胞内环境相当的粘性环境。我们的研究结果表明,在高离子强度条件下,酪蛋白经常与微管分离。然而,在高离子强度和与聚合物拥挤的条件下,驱动蛋白的过程运动持续并增加频率。这种设置再现了在细胞内环境中测量的马达机械特性的显著变化,并提出了在细胞中发现的高离子强度下运动蛋白保持运动的机制。关键词:运动蛋白运动性,分子拥挤,离子强度,细胞内运输,分子马达的进程性。
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Impact of physiological ionic strength and crowding on kinesin-1 motility.

The motility of biological molecular motors has typically been analyzed by in vitro reconstitution systems using motors isolated and purified from organs or expressed in cultured cells. The behavior of biomolecular motors within cells has frequently been reported to be inconsistent with that observed in reconstituted systems in vitro. Although this discrepancy has been attributed to differences in ionic strength and intracellular crowding, understanding how such parameters affect the motility of motors remains challenging. In this report, we investigated the impact of intracellular crowding in vitro on the mechanical properties of kinesin under a high ionic strength that is comparable to the cytoplasm. Initially, we characterized viscosity in a cell by using a kinesin motor lacking the cargo-binding domain. We then used polyethylene glycol to create a viscous environment in vitro comparable to the intracellular environment. Our results showed that kinesin frequently dissociated from microtubules under high ionic strength conditions. However, under conditions of both high ionic strength and crowding with polymers, the processive movement of kinesin persisted and increased in frequency. This setting reproduces the significant variations in the mechanical properties of motors measured in the intracellular environment and suggests a mechanism whereby kinesin maintains motility under the high ionic strengths found in cells.Key words: Kinesin motility, molecular crowding, ionic strength, intracellular transport, processivity of molecular motors.

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来源期刊
Cell structure and function
Cell structure and function 生物-细胞生物学
CiteScore
2.50
自引率
0.00%
发文量
6
审稿时长
>12 weeks
期刊介绍: Cell Structure and Function is a fully peer-reviewed, fully Open Access journal. As the official English-language journal of the Japan Society for Cell Biology, it is published continuously online and biannually in print. Cell Structure and Function publishes important, original contributions in all areas of molecular and cell biology. The journal welcomes the submission of manuscripts on research areas such as the cell nucleus, chromosomes, and gene expression; the cytoskeleton and cell motility; cell adhesion and the extracellular matrix; cell growth, differentiation and death; signal transduction; the protein life cycle; membrane traffic; and organelles.
期刊最新文献
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