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Int J Biochem Mol Biol. 2022 Aug 20;13(4):28-39. eCollection 2022.
2
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3
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Peptidoglycan recognition proteins: a novel family of four human innate immunity pattern recognition molecules.肽聚糖识别蛋白:人类四种新型先天性免疫模式识别分子家族
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本文引用的文献

1
Molecular and Functional Characterization of Peptidoglycan Recognition Proteins OfPGRP-A and OfPGRP-B in (Lepidoptera: Crambidae).稻纵卷叶螟(鳞翅目:草螟科)中肽聚糖识别蛋白OfPGRP - A和OfPGRP - B的分子与功能特征分析
Insects. 2022 Apr 28;13(5):417. doi: 10.3390/insects13050417.
2
Peptidoglycan recognition protein-S1 (PGRP-S1) from Diaphania pyloalis (Walker) is involved in the agglutination and prophenoloxidase activation pathway.斜纹夜蛾(Diaphania pyloalis (Walker))的肽聚糖识别蛋白-S1(PGRP-S1)参与了凝集和酚氧化酶原激活途径。
Gene. 2022 Jan 30;809:146004. doi: 10.1016/j.gene.2021.146004. Epub 2021 Oct 11.
3
Mechanisms of Action of the PGLYRP1/Tag7 Protein in Innate and Acquired Immunity.PGLYRP1/Tag7蛋白在固有免疫和获得性免疫中的作用机制
Acta Naturae. 2021 Jan-Mar;13(1):91-101. doi: 10.32607/actanaturae.11102.
4
Molecular and functional identification of a short-type peptidoglycan recognition protein, PGRP-S, in the Chinese soft-shelled turtle Pelodiscus sinensis.中华鳖中一种短型肽聚糖识别蛋白PGRP-S的分子与功能鉴定
Dev Comp Immunol. 2021 Apr;117:103965. doi: 10.1016/j.dci.2020.103965. Epub 2020 Dec 10.
5
Identification and characterization of a novel short-type peptidoglycan recognition protein in Apostichopus japonicus.鉴定和表征日本刺参中的一种新型短型肽聚糖识别蛋白。
Fish Shellfish Immunol. 2020 Apr;99:257-266. doi: 10.1016/j.fsi.2020.02.013. Epub 2020 Feb 12.
6
The peptidoglycan recognition protein PGRP-LE regulates the Drosophila immune response against the pathogen Photorhabdus.肽聚糖识别蛋白 PGRP-LE 调控果蝇对病原菌 Photorhabdus 的免疫反应。
Microb Pathog. 2019 Nov;136:103664. doi: 10.1016/j.micpath.2019.103664. Epub 2019 Aug 9.
7
Distinct Functions of Peptidoglycan Recognition Protein 2 in Immune Responses to Bacteria and Viruses.
Front Immunol. 2019 Apr 12;10:776. doi: 10.3389/fimmu.2019.00776. eCollection 2019.
8
Molecular and functional characterization of a short-type peptidoglycan recognition protein, PGRP-S in the amphibian Xenopus laevis.短型肽聚糖识别蛋白 PGRP-S 在两栖动物非洲爪蟾中的分子和功能特征。
Dev Comp Immunol. 2019 Sep;98:13-19. doi: 10.1016/j.dci.2019.04.003. Epub 2019 Apr 10.
9
The three-dimensional structure and recognition mechanism of Manduca sexta peptidoglycan recognition protein-1.舞毒蛾肽聚糖识别蛋白-1 的三维结构和识别机制。
Insect Biochem Mol Biol. 2019 May;108:44-52. doi: 10.1016/j.ibmb.2019.03.001. Epub 2019 Mar 21.
10
Structural Insights into the Preferential Binding of PGRP-SAs from Bumblebees and Honeybees to Dap-Type Peptidoglycans Rather than Lys-Type Peptidoglycans.结构洞察大虎头蜂和蜜蜂 PGRP-SA 优先与 Dap 型肽聚糖而不是 Lys 型肽聚糖结合。
J Immunol. 2019 Jan 1;202(1):249-259. doi: 10.4049/jimmunol.1800439. Epub 2018 Dec 3.

肽聚糖识别蛋白-S(PGRP-S)的配体识别:骆驼PGRP-S与庚酸复合物在2.15 Å分辨率下的结构

Ligand recognition by peptidoglycan recognition protein-S (PGRP-S): structure of the complex of camel PGRP-S with heptanoic acid at 2.15 Å resolution.

作者信息

Maurya Ankit, Ahmad Nabeel, Singh Prashant K, Viswanathan Vijayan, Kaur Punit, Sharma Pradeep, Sharma Sujata, Singh Tej P

机构信息

Department of Biophysics, All India Institute of Medical Sciences New Delhi, India.

出版信息

Int J Biochem Mol Biol. 2022 Aug 20;13(4):28-39. eCollection 2022.

PMID:36188729
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9520249/
Abstract

Peptidoglycan recognition proteins (PGRPs) are important components of the innate immune system which provide the first line of defense against invading microbes. There are four members in the family of PGRPs in animals of which PGRP-S is a common domain. It is responsible for the binding to microbial cell wall molecules. In order to understand the mode of binding of PGRP-S to the components of the bacterial cell wall, the structure of the complex of camel PGRP-S (CPGRP-S) with heptanoic acid has been determined at 2.15 Å resolution. The structure determination showed the presence of four crystallographically independent protein molecules which are designated as A, B, C, and D. These four protein molecules associate in the form of two homodimers which are represented as A-B and C-D dimers. The association between molecules A and B gives rise to a shallow cleft on the surface at one end of the dimeric interface. One molecule of heptanoic acid is observed at this binding site in the A-B dimer. The association of C and D molecules results in the formation of a long zig-zag tunnel along with the C-D interface. In the cleft at the C-D interface, three molecules of hydrogen peroxide along with other non-water solvent molecules have been observed. The analysis of the several complexes of CPGRP-S with fatty acids and non-fatty acids such as peptidoglycan, lipopolysaccharide, and lipoteichoic acid shows that the fatty acids bind at the A-B site while non-fatty acids interact through C-D interface.

摘要

肽聚糖识别蛋白(PGRPs)是先天免疫系统的重要组成部分,为抵御入侵微生物提供第一道防线。动物PGRPs家族中有四个成员,其中PGRPs-S是一个常见结构域。它负责与微生物细胞壁分子结合。为了了解PGRPs-S与细菌细胞壁成分的结合模式,已在2.15 Å分辨率下确定了骆驼PGRPs-S(CPGRPs-S)与庚酸复合物的结构。结构测定显示存在四个晶体学上独立的蛋白质分子,分别命名为A、B、C和D。这四个蛋白质分子以两个同二聚体的形式缔合,分别表示为A-B二聚体和C-D二聚体。分子A和B之间的缔合在二聚体界面一端的表面产生一个浅裂缝。在A-B二聚体的这个结合位点观察到一个庚酸分子。C和D分子的缔合导致沿着C-D界面形成一条长的锯齿形隧道。在C-D界面的裂缝中,观察到三个过氧化氢分子以及其他非水溶剂分子。对CPGRPs-S与脂肪酸和非脂肪酸(如肽聚糖、脂多糖和脂磷壁酸)的几种复合物的分析表明,脂肪酸在A-B位点结合,而非脂肪酸通过C-D界面相互作用。