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磷脂酰肌醇聚糖连接膜蛋白的生物合成:Ly-6E抗原翻译后加工的信号

Biosynthesis of a phosphatidylinositol-glycan-linked membrane protein: signals for posttranslational processing of the Ly-6E antigen.

作者信息

Su B, Bothwell A L

机构信息

Department of Pathology, Yale University Medical School, New Haven, Connecticut 06510.

出版信息

Mol Cell Biol. 1989 Aug;9(8):3369-76. doi: 10.1128/mcb.9.8.3369-3376.1989.

Abstract

The Ly-6E/A protein is a murine cell surface protein expressed at high levels on activated peripheral T cells. The only linkage known to be responsible for its association with the plasma membrane is a phosphatidylinositol-glycan (PI-G) moiety. To examine the biosynthesis of this structure, we constructed a series of mutants of Ly-6E that were expressed in COS cells by using transient-transfection procedures. When 12 or 20 carboxy-terminal residues were deleted from the primary translation product, the PI-G modification was completely abolished and the mutant proteins became secreted. Addition of the PI-G tail was partially inhibited when the charged 12-amino-acid peptide found as a cytoplasmic tail on the transmembrane form of LFA-3 was added to the COOH terminus of the Ly-6E protein. Proteolytic cleavage occurred on this mutant protein, but the PI-G moiety was added to only 50% of the molecules. Changing an Asn residue to a Lys at the hypothetical cleavage site resulted in a PI-G-linked protein having a detectable alteration in electrophoretic mobility. This finding raises the possibility that proteolytic cleavage at other amino acid sites may occur and that PI-G attachment can occur at this new site. A model identifying two regions that may act as necessary signals for the biosynthesis of the PI-G tail is presented.

摘要

Ly-6E/A蛋白是一种鼠细胞表面蛋白,在活化的外周T细胞上高水平表达。已知唯一负责其与质膜结合的连接是磷脂酰肌醇聚糖(PI-G)部分。为了研究这种结构的生物合成,我们构建了一系列Ly-6E突变体,通过瞬时转染程序在COS细胞中表达。当从初级翻译产物中删除12或20个羧基末端残基时,PI-G修饰完全消失,突变蛋白开始分泌。当将作为LFA-3跨膜形式的胞质尾巴发现的带电荷的12个氨基酸肽添加到Ly-6E蛋白的COOH末端时,PI-G尾巴的添加受到部分抑制。该突变蛋白发生了蛋白水解切割,但PI-G部分仅添加到50%的分子上。在假设的切割位点将一个Asn残基变为Lys会导致一种PI-G连接蛋白,其电泳迁移率有可检测到的改变。这一发现增加了在其他氨基酸位点可能发生蛋白水解切割以及PI-G连接可能在这个新位点发生的可能性。本文提出了一个模型,该模型确定了两个可能作为PI-G尾巴生物合成必要信号的区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ae9/362382/d8a5c2b83943/molcellb00056-0228-a.jpg

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