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首页> 外文期刊>Genetics: A Periodical Record of Investigations Bearing on Heredity and Variation >Analyses of Dynein Heavy Chain Mutations Reveal Complex Interactions Between Dynein Motor Domains and Cellular Dynein Functions
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Analyses of Dynein Heavy Chain Mutations Reveal Complex Interactions Between Dynein Motor Domains and Cellular Dynein Functions

机译:动力蛋白重链突变分析揭示动力蛋白域和细胞动力蛋白之间复杂的相互作用。

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摘要

Cytoplasmic dynein transports cargoes for a variety of crucial cellular functions. However, since dynein is essential in most eukaryotic organisms, the in-depth study of the cellular function of dynein via genetic analysis of dynein mutations has not been practical. Here, we identify and characterize 34 different dynein heavy chain mutations using a genetic screen of the ascomycete fungus Neurospora crassa , in which dynein is nonessential. Interestingly, our studies show that these mutations segregate into five different classes based on the in vivo localization of the mutated dynein motors. Furthermore, we have determined that the different classes of dynein mutations alter vesicle trafficking, microtubule organization, and nuclear distribution in distinct ways and require dynactin to different extents. In addition, biochemical analyses of dynein from one mutant strain show a strong correlation between its in vitro biochemical properties and the aberrant intracellular function of that altered dynein. When the mutations were mapped to the published dynein crystal structure, we found that the three-dimensional structural locations of the heavy chain mutations were linked to particular classes of altered dynein functions observed in cells. Together, our data indicate that the five classes of dynein mutations represent the entrapment of dynein at five separate points in the dynein mechanochemical and transport cycles. We have developed N. crassa as a model system where we can dissect the complexities of dynein structure, function, and interaction with other proteins with genetic, biochemical, and cell biological studies.
机译:细胞质动力蛋白可以运送各种重要的细胞功能。但是,由于动力蛋白在大多数真核生物中是必不可少的,因此通过对动力蛋白突变进行遗传分析来深入研究动力蛋白的细胞功能尚不可行。在这里,我们使用子囊真菌Neurospora crassa的遗传筛选来鉴定和表征34种不同的动力蛋白重链突变,其中动力蛋白无关紧要。有趣的是,我们的研究表明,基于突变的动力蛋白的体内定位,这些突变可分为五类。此外,我们已经确定,不同类型的动力蛋白突变以不同的方式改变囊泡运输,微管组织和核分布,并在不同程度上要求动力蛋白。此外,对来自一个突变菌株的动力蛋白的生化分析表明,它的体外生化特性与改变的动力蛋白的异常细胞内功能之间存在很强的相关性。当突变映射到已发布的动力蛋白晶体结构时,我们发现重链突变的三维结构位置与细胞中观察到的动力蛋白改变的特定类别有关。总之,我们的数据表明,五类动力蛋白突变代表了动力蛋白在动力化学和运输周期中五个单独点处的包裹。我们已经开发了猪笼草作为模型系统,可以通过遗传,生化和细胞生物学研究剖析动力蛋白的结构,功能以及与其他蛋白质的相互作用的复杂性。

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