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真核生物胆碱磷酸转移酶催化磷脂合成及选择性的结构基础。

Structural basis for catalysis and selectivity of phospholipid synthesis by eukaryotic choline-phosphotransferase.

作者信息

Roberts Jacquelyn R, Horibata Yasuhiro, Kwarcinski Frank E, Lam Vinson, Raczkowski Ashleigh M, Hubbard Akane, White Betsy, Sugimoto Hiroyuki, Tall Gregory G, Ohi Melanie D, Maeda Shoji

机构信息

Life Sciences Institute, University of Michigan, Ann Arbor, MI, USA.

Department of Biological Chemistry, University of Michigan School of Medicine, Ann Arbor, MI, USA.

出版信息

Nat Commun. 2025 Jan 2;16(1):111. doi: 10.1038/s41467-024-55673-1.

Abstract

Phospholipids are the most abundant component in lipid membranes and are essential for the structural and functional integrity of the cell. In eukaryotic cells, phospholipids are primarily synthesized de novo through the Kennedy pathway that involves multiple enzymatic processes. The terminal reaction is mediated by a group of cytidine-5'-diphosphate (CDP)-choline /CDP-ethanolamine-phosphotransferases (CPT/EPT) that use 1,2-diacylglycerol (DAG) and CDP-choline or CDP-ethanolamine to produce phosphatidylcholine (PC) or phosphatidylethanolamine (PE) that are the main phospholipids in eukaryotic cells. Here we present the structure of the yeast CPT1 in multiple substrate-bound states. Structural and functional analysis of these binding-sites reveal the critical residues for the DAG acyl-chain preference and the choline/ethanolamine selectivity. Additionally, we present the structure in complex with a potent inhibitor characterized in this study. The ensemble of structures allows us to propose the reaction mechanism for phospholipid biosynthesis by the family of CDP-alcohol phosphotransferases (CDP-APs).

摘要

磷脂是脂质膜中最丰富的成分,对细胞的结构和功能完整性至关重要。在真核细胞中,磷脂主要通过涉及多个酶促过程的肯尼迪途径从头合成。终端反应由一组胞苷-5'-二磷酸(CDP)-胆碱/CDP-乙醇胺-磷酸转移酶(CPT/EPT)介导,这些酶利用1,2-二酰基甘油(DAG)和CDP-胆碱或CDP-乙醇胺生成磷脂酰胆碱(PC)或磷脂酰乙醇胺(PE),它们是真核细胞中的主要磷脂。在此,我们展示了处于多种底物结合状态的酵母CPT1的结构。对这些结合位点的结构和功能分析揭示了DAG酰基链偏好和胆碱/乙醇胺选择性的关键残基。此外,我们展示了与本研究中鉴定的一种强效抑制剂结合的复合物结构。这些结构组合使我们能够提出CDP-醇磷酸转移酶(CDP-APs)家族进行磷脂生物合成的反应机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f057/11696302/f3e252301c05/41467_2024_55673_Fig1_HTML.jpg

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