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脂质转运蛋白的特异性:一个体外研究的故事。

Specificity of lipid transfer proteins: An in vitro story.

作者信息

Hamaï Amazigh, Drin Guillaume

机构信息

Université Côte d'Azur, CNRS and Inserm, Institut de Pharmacologie Moléculaire et Cellulaire, UMR 7275, 660 route des lucioles, 06560, Valbonne Sophia Antipolis, France.

Université Côte d'Azur, CNRS and Inserm, Institut de Pharmacologie Moléculaire et Cellulaire, UMR 7275, 660 route des lucioles, 06560, Valbonne Sophia Antipolis, France.

出版信息

Biochimie. 2024 Dec;227(Pt B):85-110. doi: 10.1016/j.biochi.2024.09.007. Epub 2024 Sep 19.

DOI:10.1016/j.biochi.2024.09.007
PMID:39304019
Abstract

Lipids, which are highly diverse, are finely distributed between organelle membranes and the plasma membrane (PM) of eukaryotic cells. As a result, each compartment has its own lipid composition and molecular identity, which is essential for the functional fate of many proteins. This distribution of lipids depends on two main processes: lipid synthesis, which takes place in different subcellular regions, and the transfer of these lipids between and across membranes. This review will discuss the proteins that carry lipids throughout the cytosol, called LTPs (Lipid Transfer Proteins). More than the modes of action or biological roles of these proteins, we will focus on the in vitro strategies employed during the last 60 years to address a critical question: What are the lipid ligands of these LTPs? We will describe the extent to which these strategies, combined with structural data and investigations in cells, have made it possible to discover proteins, namely ORPs, Sec14, PITPs, STARDs, Ups/PRELIs, START-like, SMP-domain containing proteins, and bridge-like LTPs, which compose some of the main eukaryotic LTP families, and their lipid ligands. We will see how these approaches have played a central role in cell biology, showing that LTPs can connect distant metabolic branches, modulate the composition of cell membranes, and even create new subcellular compartments.

摘要

脂质种类繁多,在真核细胞的细胞器膜和质膜(PM)之间精细分布。因此,每个区室都有其独特的脂质组成和分子特性,这对许多蛋白质的功能命运至关重要。脂质的这种分布取决于两个主要过程:在不同亚细胞区域进行的脂质合成,以及这些脂质在膜之间和跨膜的转移。本综述将讨论在整个细胞质中携带脂质的蛋白质,即脂质转移蛋白(LTPs)。除了这些蛋白质的作用方式或生物学作用外,我们将重点关注过去60年中用于解决一个关键问题的体外策略:这些LTPs的脂质配体是什么?我们将描述这些策略与结构数据以及细胞研究相结合,在多大程度上使得发现构成一些主要真核LTP家族的蛋白质成为可能,这些蛋白质包括氧化还原蛋白(ORPs)、Sec14、磷脂酰肌醇转移蛋白(PITPs)、StAR相关脂质转运蛋白(STARDs)、Ups/PRELIs、类START蛋白、含SMP结构域的蛋白质以及桥状LTPs,以及它们的脂质配体。我们将看到这些方法如何在细胞生物学中发挥核心作用,表明LTPs可以连接遥远的代谢分支、调节细胞膜的组成,甚至创建新的亚细胞区室。

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Specificity of lipid transfer proteins: An in vitro story.脂质转运蛋白的特异性:一个体外研究的故事。
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J Cell Sci. 2025 Aug 1;138(15). doi: 10.1242/jcs.263971. Epub 2025 Aug 8.
2
An origin for a eukaryotic lipid transfer protein fold in Asgard archaea.阿斯加德古菌中真核生物脂质转移蛋白折叠的起源。
bioRxiv. 2025 Jun 8:2025.05.16.653879. doi: 10.1101/2025.05.16.653879.
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VPS13 and bridge-like lipid transporters, mechanisms, and mysteries.VPS13与桥状脂质转运蛋白、机制及谜团
Front Neurosci. 2025 Apr 28;19:1534061. doi: 10.3389/fnins.2025.1534061. eCollection 2025.
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Multiple cAMP/PKA complexes at the STIM1 ER/PM junction specified by E-Syt1 and E-Syt2 reciprocally gates ANO1 (TMEM16A) via Ca.由E-Syt1和E-Syt2指定的位于STIM1内质网/质膜连接处的多个环磷酸腺苷/蛋白激酶A复合物通过钙离子对ANO1(跨膜蛋白16A)进行双向门控。
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