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翻转酶 ATP8A1 调控 ARF 效应因子到反式高尔基体网络的募集。

The lipid flippase ATP8A1 regulates the recruitment of ARF effectors to the trans-Golgi Network.

机构信息

Instituto de Histología y Embriología de Mendoza (IHEM), Universidad Nacional de Cuyo, Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Mendoza 5500, Argentina.

Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham, 1918 University Boulevard, MCLM 731, Birmingham, AL, 35233-2008, USA.

出版信息

Arch Biochem Biophys. 2024 Aug;758:110049. doi: 10.1016/j.abb.2024.110049. Epub 2024 Jun 13.

Abstract

Formation of transport vesicles requires the coordinate activity of the coating machinery that selects cargo into the nascent vesicle and the membrane bending machinery that imparts curvature to the forming bud. Vesicle coating at the trans-Golgi Network (TGN) involves AP1, GGA2 and clathrin, which are recruited to membranes by activated ARF GTPases. The ARF activation at the TGN is mediated by the BIG1 and BIG2 guanine nucleotide exchange factors (GEFs). Membrane deformation at the TGN has been shown to be mediated by lipid flippases, including ATP8A1, that moves phospholipids from the inner to the outer leaflet of the TGN membrane. We probed a possible coupling between the coating and deformation machineries by testing for an interaction between BIG1, BIG2 and ATP8A1, and by assessing whether such an interaction may influence coating efficiency. Herein, we document that BIG1 and BIG2 co-localize with ATP8A1 in both, static and highly mobile TGN elements, and that BIG1 and BIG2 bind ATP8A1. We show that the interaction involves the catalytic Sec7 domain of the GEFs and the cytosolic C-terminal tail of ATP8A1. Moreover, we report that the expression of ATP8A1, but not ATP8A1 lacking the GEF-binding cytosolic tail, increases the generation of activated ARFs at the TGN and increases the selective recruitment of AP1, GGA2 and clathrin to TGN membranes. This occurs without increasing BIG1 or BIG2 levels at the TGN, suggesting that the binding of the ATP8A1 flippase tail to the Sec7 domain of BIG1/BIG2 increases their catalytic activity. Our results support a model in which a flippase component of the deformation machinery impacts the activity of the GEF component of the coating machinery.

摘要

运输囊泡的形成需要协调的涂层机制,该机制将货物选择到新生囊泡中,并赋予形成芽的膜弯曲机制。跨高尔基网络(TGN)中的囊泡涂层涉及 AP1、GGA2 和网格蛋白,它们被激活的 ARF GTPase 募集到膜上。TGN 中的 ARF 激活由 BIG1 和 BIG2 鸟嘌呤核苷酸交换因子(GEF)介导。已经表明,TGN 中的膜变形是由脂质翻转酶介导的,包括 ATP8A1,它将磷脂从 TGN 膜的内叶转移到外叶。我们通过测试 BIG1、BIG2 和 ATP8A1 之间的相互作用,并评估这种相互作用是否会影响涂层效率,来探究涂层和变形机制之间的可能偶联。在此,我们记录到 BIG1 和 BIG2 与 ATP8A1 在静态和高度移动的 TGN 元件中都共定位,并且 BIG1 和 BIG2 与 ATP8A1 结合。我们表明,这种相互作用涉及 GEF 的催化 Sec7 结构域和 ATP8A1 的细胞质 C 末端尾部。此外,我们报告说,ATP8A1 的表达,而不是缺乏 GEF 结合的细胞质尾部的 ATP8A1,会增加 TGN 中激活的 ARF 的产生,并增加 AP1、GGA2 和网格蛋白选择性募集到 TGN 膜。这发生在不增加 BIG1 或 BIG2 在 TGN 中的水平的情况下,这表明 ATP8A1 翻转酶尾部与 BIG1/BIG2 的 Sec7 结构域的结合增加了它们的催化活性。我们的结果支持了这样一种模型,即变形机械的翻转酶组件影响涂层机械的 GEF 组件的活性。

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