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首页> 外文期刊>Microbial Cell >Insights into dynamin-associated disorders through analysis of equivalent mutations in the yeast dynamin Vps1
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Insights into dynamin-associated disorders through analysis of equivalent mutations in the yeast dynamin Vps1

机译:通过分析酵母动力Vps1中的等效突变来了解动力相关疾病

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摘要

The dynamins represent a superfamily of proteins that have been shown to function in a wide range of membrane fusion and fission events. An increasing number of mutations in the human classical dynamins, Dyn-1 and Dyn-2 has been reported, with diseases caused by these changes ranging from Charcot-Marie-Tooth disorder to epileptic encephalopathies. The budding yeast, Saccharomyces cerevisiae expresses a single dynamin-related protein that functions in membrane trafficking, and is considered to play a similar role to Dyn-1 and Dyn-2 during scission of endocytic vesicles at the plasma membrane. Large parts of the dynamin protein are highly conserved across species and this has enabled us in this study to select a number of disease causing mutations and to generate equivalent mutations in Vps1. We have then studied these mutants using both cellular and biochemical assays to ascertain functions of the protein that have been affected by the changes. Specifically, we demonstrate that the Vps1-G397R mutation (Dyn-2 G358R) disrupts protein oligomerization, Vps1-A447T (Dyn-1 A408T) affects the scission stage of endocytosis, while Vps1-R298L (Dyn-1 R256L) affects lipid binding specificity and possibly an early stage in endocytosis. Overall, we consider that the yeast model will potentially provide an avenue for rapid analysis of new dynamin mutations in order to understand the underlying mechanisms that they disrupt.
机译:动力蛋白代表蛋白质的超家族,已被证明在广泛的膜融合和裂变事件中起作用。据报道,人类经典动力蛋白Dyn-1和Dyn-2的突变数量不断增加,这些疾病引起的疾病从夏科特-玛丽-牙齿疾病到癫痫性脑病不等。出芽的酿酒酵母表达一种在膜运输中起作用的,与动力蛋白有关的蛋白质,并被认为在胞浆内膜切开内膜囊泡期间起着与Dyn-1和Dyn-2类似的作用。 dynamin蛋白的大部分在整个物种中高度保守,这使我们能够在这项研究中选择多种引起突变的疾病,并在Vps1中产生同等的突变。然后,我们使用细胞和生化分析研究了这些突变体,以确定已受到变化影响的蛋白质功能。具体来说,我们证明了Vps1-G397R突变(Dyn-2 G358R)破坏了蛋白质的寡聚,Vps1-A447T(Dyn-1 A408T)影响了胞吞作用的分裂阶段,而Vps1-R298L(Dyn-1 R256L)影响了脂质结合特异性并可能是内吞作用的早期阶段。总的来说,我们认为酵母模型将可能为快速分析新的动态突变提供一条途径,以便了解其破坏的潜在机制。

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