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在印度间日疟原虫中,质膜蛋白酶 V 的不完全重复插入突变型改变了外输蛋白 PEXEL 基序的结合特性。

Imperfect duplicate insertions type of mutations in plasmepsin V modulates binding properties of PEXEL motifs of export proteins in Indian Plasmodium vivax.

机构信息

Protein Biochemistry and Structural Biology Division, National Institute of Malaria Research (ICMR), Dwarka, New Delhi, India.

出版信息

PLoS One. 2013;8(3):e60077. doi: 10.1371/journal.pone.0060077. Epub 2013 Mar 29.

Abstract

INTRODUCTION

Plasmepsin V (PM-V) have functionally conserved orthologues across the Plasmodium genus who's binding and antigenic processing at the PEXEL motifs for export about 200-300 essential proteins is important for the virulence and viability of the causative Plasmodium species. This study was undertaken to determine P. vivax plasmepsin V Ind (PvPM-V-Ind) PEXEL motif export pathway for pathogenicity-related proteins/antigens export thereby altering plasmodium exportome during erythrocytic stages.

METHOD

We identify and characterize Plasmodium vivax plasmepsin-V-Ind (mutant) gene by cloning, sequence analysis, in silico bioinformatic protocols and structural modeling predictions based on docking studies on binding capacity with PEXEL motifs processing in terms of binding and accessibility of export proteins.

RESULTS

Cloning and sequence analysis for genetic diversity demonstrates PvPM-V-Ind (mutant) gene is highly conserved among all isolates from different geographical regions of India. Imperfect duplicate insertion types of mutations (SVSE from 246-249 AA and SLSE from 266-269 AA) were identified among all Indian isolates in comparison to P.vivax Sal-1 (PvPM-V-Sal 1) isolate. In silico bioinformatics interaction studies of PEXEL peptide and active enzyme reveal that PvPM-V-Ind (mutant) is only active in endoplasmic reticulum lumen and membrane embedding is essential for activation of plasmepsin V. Structural modeling predictions based on docking studies with PEXEL motif show significant variation in substrate protein binding of these imperfect mutations with data mined PEXEL sequences. The predicted variation in the docking score and interacting amino acids of PvPM-V-Ind (mutant) proteins with PEXEL and lopinavir suggests a modulation in the activity of PvPM-V in terms of binding and accessibility at these sites.

CONCLUSION/SIGNIFICANCE: Our functional modeled validation of PvPM-V-Ind (mutant) imperfect duplicate insertions with data mined PEXEL sequences leading to altered binding and substrate accessibility of the enzyme makes it a plausible target to investigate export mechanisms for in silico virtual screening and novel pharmacophore designing.

摘要

简介

疟原虫属的所有种属中都存在功能保守的类朊酶 V(PM-V),其在 PEXEL 基序上的结合和抗原加工对于约 200-300 种必需蛋白质的输出至关重要,这些蛋白质对于引起疾病的疟原虫种的毒力和生存能力是必需的。本研究旨在确定间日疟原虫类朊酶 V-Ind(PvPM-V-Ind)PEXEL 基序的出口途径,用于与致病性相关的蛋白质/抗原的输出,从而改变红细胞阶段的疟原虫外显子组。

方法

我们通过克隆、序列分析、基于对接研究的结构建模预测和结构建模预测来鉴定和表征间日疟原虫类朊酶 V-Ind(突变)基因,这些预测基于对接研究对 PEXEL 基序加工的结合能力和出口蛋白的可及性。

结果

遗传多样性的克隆和序列分析表明,PvPM-V-Ind(突变)基因在印度不同地理区域的所有分离株中高度保守。与间日疟原虫 Sal-1(PvPM-V-Sal 1)分离株相比,在所有印度分离株中都发现了不完全重复插入突变(246-249 AA 的 SVSE 和 266-269 AA 的 SLSE)。PEXEL 肽和活性酶的计算机生物信息学相互作用研究表明,PvPM-V-Ind(突变)仅在内质网腔中活跃,并且膜嵌入对于类朊酶 V 的激活是必需的。基于对接研究与 PEXEL 基序的结构建模预测表明,这些不完全突变的底物蛋白结合存在显著差异,与挖掘的 PEXEL 序列数据相比。与 PEXEL 和洛匹那韦对接得分和相互作用氨基酸的预测变化表明,PvPM-V-Ind(突变)蛋白的活性在这些位点的结合和可及性方面发生了变化。

结论/意义:我们对 PvPM-V-Ind(突变)不完全重复插入与挖掘的 PEXEL 序列的功能建模验证导致酶的结合和底物可及性发生改变,这使其成为研究出口机制的合理靶点,可用于计算机虚拟筛选和新型药效团设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2155/3612065/8c2f6e6021dc/pone.0060077.g001.jpg

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