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假定的囊泡靶向分子Sed5定位于顺式高尔基体网络涉及到它的跨膜结构域和细胞质结构域。

Localization of Sed5, a putative vesicle targeting molecule, to the cis-Golgi network involves both its transmembrane and cytoplasmic domains.

作者信息

Banfield D K, Lewis M J, Rabouille C, Warren G, Pelham H R

机构信息

MRC Laboratory of Molecular Biology, Cambridge, United Kingdom.

出版信息

J Cell Biol. 1994 Oct;127(2):357-71. doi: 10.1083/jcb.127.2.357.

DOI:10.1083/jcb.127.2.357
PMID:7929581
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2120199/
Abstract

The yeast Sed5 protein, which is required for vesicular transport between ER and Golgi complex, is a membrane protein of the syntaxin family. These proteins are thought to provide the specific targets that are recognized by transport vesicles. We have investigated the mechanism by which Sed5 protein is itself localized. Expression of epitope-tagged versions of the yeast, Drosophila and rat Sed5 homologues in COS cells results in a perinuclear distribution; immuno-EM reveals that the majority of the protein is in a tubulo-vesicular compartment on the cis side of the Golgi apparatus. A similar distribution was obtained with a chimeric molecule consisting of a plasma membrane syntaxin with the Drosophila Sed5 transmembrane domain. This indicates that the membrane-spanning domain contains targeting information, as is the case with resident Golgi enzymes. However, alterations to the transmembrane domain of Drosophila Sed5 itself did not result in its mistargeting, implying that an additional targeting mechanism exists which involves only the cytoplasmic part of the protein. This was confirmed by modifying the transmembrane domain of the yeast Sed5 protein: substitution with the corresponding region from the Sso1 protein (a plasma membrane syntaxin homologue) did not affect yeast Sed5 function in vivo.

摘要

酵母Sed5蛋白是内质网与高尔基体复合体之间囊泡运输所必需的,它是 syntaxin 家族的一种膜蛋白。这些蛋白被认为能提供运输囊泡识别的特定靶点。我们研究了Sed5蛋白自身定位的机制。在COS细胞中表达带有表位标签的酵母、果蝇和大鼠Sed5同源物,会导致其呈核周分布;免疫电镜显示,大部分蛋白位于高尔基体顺面的管状囊泡区室中。由具有果蝇Sed5跨膜结构域的质膜syntaxin组成的嵌合分子也获得了类似的分布。这表明跨膜结构域包含靶向信息,就像驻留高尔基体酶的情况一样。然而,果蝇Sed5自身跨膜结构域的改变并未导致其靶向错误,这意味着存在一种仅涉及该蛋白胞质部分的额外靶向机制。通过修饰酵母Sed5蛋白的跨膜结构域证实了这一点:用Sso1蛋白(一种质膜syntaxin同源物)的相应区域进行替换,在体内并不影响酵母Sed5的功能。

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本文引用的文献

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Bos1p, an integral membrane protein of the endoplasmic reticulum to Golgi transport vesicles, is required for their fusion competence.Bos1p是内质网到高尔基体运输囊泡的一种整合膜蛋白,是其融合能力所必需的。
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