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多个基序通过涉及二聚化和更高阶寡聚化的机制调节 p75 的顶部分类。

Multiple motifs regulate apical sorting of p75 via a mechanism that involves dimerization and higher-order oligomerization.

机构信息

Renal-Electrolyte Division, Department of Medicine, University of Pittsburgh School of Medicine, Pittsburgh, PA 15261, USA.

出版信息

Mol Biol Cell. 2013 Jun;24(12):1996-2007. doi: 10.1091/mbc.E13-02-0078. Epub 2013 May 1.

Abstract

The sorting signals that direct proteins to the apical surface of polarized epithelial cells are complex and can include posttranslational modifications, such as N- and O-linked glycosylation. Efficient apical sorting of the neurotrophin receptor p75 is dependent on its O-glycosylated membrane proximal stalk, but how this domain mediates targeting is unknown. Protein oligomerization or clustering has been suggested as a common step in the segregation of all apical proteins. Like many apical proteins, p75 forms dimers, and we hypothesized that formation of higher-order clusters mediated by p75 dimerization and interactions of the stalk facilitate its apical sorting. Using fluorescence fluctuation techniques (photon-counting histogram and number and brightness analyses) to study p75 oligomerization status in vivo, we found that wild-type p75-green fluorescent protein forms clusters in the trans-Golgi network (TGN) but not at the plasma membrane. Disruption of either the dimerization motif or the stalk domain impaired both clustering and polarized delivery. Manipulation of O-glycan processing or depletion of multiple galectins expressed in Madin-Darby canine kidney cells had no effect on p75 sorting, suggesting that the stalk domain functions as a structural prop to position other determinants in the lumenal domain of p75 for oligomerization. Additionally, a p75 mutant with intact dimerization and stalk motifs but with a dominant basolateral sorting determinant (Δ250 mutant) did not form oligomers, consistent with a requirement for clustering in apical sorting. Artificially enhancing dimerization restored clustering to the Δ250 mutant but was insufficient to reroute this mutant to the apical surface. Together these studies demonstrate that clustering in the TGN is required for normal biosynthetic apical sorting of p75 but is not by itself sufficient to reroute a protein to the apical surface in the presence of a strong basolateral sorting determinant. Our studies shed new light on the hierarchy of polarized sorting signals and on the mechanisms by which newly synthesized proteins are segregated in the TGN for eventual apical delivery.

摘要

将蛋白质导向极化上皮细胞顶表面的分选信号很复杂,可能包括翻译后修饰,如 N-和 O-连接糖基化。神经营养因子受体 p75 的有效顶部分选依赖于其 O-糖基化的膜近端茎,但该结构域如何介导靶向尚不清楚。蛋白质寡聚化或聚集已被提议作为所有顶部分泌蛋白分隔的常见步骤。像许多顶部分泌蛋白一样,p75 形成二聚体,我们假设 p75 二聚化形成的更高阶聚集体以及茎的相互作用促进了它的顶部分选。我们使用荧光波动技术(光子计数直方图和数量和亮度分析)来研究体内 p75 寡聚化状态,发现野生型 p75-绿色荧光蛋白在高尔基网络 (TGN) 中形成聚集体,但不在质膜上。破坏二聚化结构域或茎结构域都会损害聚集体形成和极化运输。操纵 O-糖基化处理或耗尽在 Madin-Darby 犬肾细胞中表达的多个半乳糖凝集素对 p75 分选没有影响,这表明茎结构域作为一种结构支柱,将其他决定因素定位在 p75 腔结构域中以进行寡聚化。此外,具有完整二聚化和茎结构域但具有显性基底外侧分选决定簇(Δ250 突变体)的 p75 突变体不能形成寡聚体,这与顶部分选中聚集的要求一致。人工增强二聚化恢复了 Δ250 突变体的聚集,但不足以将该突变体重新导向到顶表面。这些研究共同表明,TGN 中的聚集是 p75 正常生物合成顶部分选所必需的,但本身不足以在存在强基底外侧分选决定簇的情况下将蛋白质重新导向到顶表面。我们的研究为极化分选信号的层次结构以及新合成的蛋白质在 TGN 中如何分隔以最终递送至顶表面的机制提供了新的认识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/342b/3681702/11b07b4dee2e/1996fig1.jpg

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