Crystal structure of E. coli lipoprotein diacylglyceryl transferase

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作者
Guotao Mao
Yan Zhao
Xusheng Kang
Zhijie Li
Yan Zhang
Xianping Wang
Fei Sun
Krishnan Sankaran
Xuejun C. Zhang
机构
[1] National Laboratory of Macromolecules,
[2] National Center of Protein Science - Beijing,undefined
[3] Institute of Biophysics,undefined
[4] Chinese Academy of Sciences,undefined
[5] University of Chinese Academy of Sciences,undefined
[6] School of Life Sciences,undefined
[7] University of Science and Technology of China,undefined
[8] Centre for Biotechnology,undefined
[9] Anna University,undefined
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Nature Communications | / 7卷
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摘要
Lipoprotein biogenesis is essential for bacterial survival. Phosphatidylglycerol:prolipoprotein diacylglyceryl transferase (Lgt) is an integral membrane enzyme that catalyses the first reaction of the three-step post-translational lipid modification. Deletion of the lgt gene is lethal to most Gram-negative bacteria. Here we present the crystal structures of Escherichia coli Lgt in complex with phosphatidylglycerol and the inhibitor palmitic acid at 1.9 and 1.6 Å resolution, respectively. The structures reveal the presence of two binding sites and support the previously reported structure–function relationships of Lgt. Complementation results of lgt-knockout cells with different mutant Lgt variants revealed critical residues, including Arg143 and Arg239, that are essential for diacylglyceryl transfer. Using a GFP-based in vitro assay, we correlated the activities of Lgt with structural observations. Together, the structural and biochemical data support a mechanism whereby substrate and product, lipid-modified lipobox-containing peptide, enter and leave the enzyme laterally relative to the lipid bilayer.
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