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禽类防御素 Apl_AvBD2 的分子动力学模拟研究和体外定点突变。

Molecular dynamics simulation studies and in vitro site directed mutagenesis of avian beta-defensin Apl_AvBD2.

机构信息

Molecular Virology Laboratory, Department of Molecular Microbiology, Rajiv Gandhi Centre for Biotechnology, Thycaud PO, Thiruvananthapuram-695014, Kerala, India.

出版信息

BMC Bioinformatics. 2010 Jan 18;11 Suppl 1(Suppl 1):S7. doi: 10.1186/1471-2105-11-S1-S7.

Abstract

BACKGROUND

Defensins comprise a group of antimicrobial peptides, widely recognized as important elements of the innate immune system in both animals and plants. Cationicity, rather than the secondary structure, is believed to be the major factor defining the antimicrobial activity of defensins. To test this hypothesis and to improve the activity of the newly identified avian beta-defensin Apl_AvBD2 by enhancing the cationicity, we performed in silico site directed mutagenesis, keeping the predicted secondary structure intact. Molecular dynamics (MD) simulation studies were done to predict the activity. Mutant proteins were made by in vitro site directed mutagenesis and recombinant protein expression, and tested for antimicrobial activity to confirm the results obtained in MD simulation analysis.

RESULTS

MD simulation revealed subtle, but critical, structural variations between the wild type Apl_AvBD2 and the more cationic in silico mutants, which were not detected in the initial structural prediction by homology modelling. The C-terminal cationic 'claw' region, important in antimicrobial activity, which was intact in the wild type, showed changes in shape and orientation in all the mutant peptides. Mutant peptides also showed increased solvent accessible surface area and more number of hydrogen bonds with the surrounding water molecules. In functional studies, the Escherichia coli expressed, purified recombinant mutant proteins showed total loss of antimicrobial activity compared to the wild type protein.

CONCLUSION

The study revealed that cationicity alone is not the determining factor in the microbicidal activity of antimicrobial peptides. Factors affecting the molecular dynamics such as hydrophobicity, electrostatic interactions and the potential for oligomerization may also play fundamental roles. It points to the usefulness of MD simulation studies in successful engineering of antimicrobial peptides for improved activity and other desirable functions.

摘要

背景

防御素是一组抗菌肽,被广泛认为是动物和植物先天免疫系统的重要组成部分。阳离子性而不是二级结构被认为是定义防御素抗菌活性的主要因素。为了验证这一假设,并通过增强阳离子性来提高新鉴定的禽类β-防御素 Apl_AvBD2 的活性,我们进行了计算机定向诱变,保持预测的二级结构完整。进行分子动力学(MD)模拟研究以预测活性。通过体外定向诱变和重组蛋白表达制备突变蛋白,并测试其抗菌活性以确认 MD 模拟分析中获得的结果。

结果

MD 模拟揭示了野生型 Apl_AvBD2 和更具阳离子性的计算机模拟突变体之间的细微但关键的结构差异,这些差异在同源建模的初始结构预测中无法检测到。在野生型中保持完整的 C 末端阳离子“爪”区域对于抗菌活性很重要,在所有突变肽中形状和取向都发生了变化。突变肽还显示出增加的溶剂可及表面积和与周围水分子形成更多氢键的能力。在功能研究中,与野生型蛋白相比,表达和纯化的重组突变蛋白对大肠杆菌完全失去了抗菌活性。

结论

该研究表明,阳离子性本身并不是抗菌肽杀菌活性的决定因素。影响分子动力学的因素,如疏水性、静电相互作用和聚合的可能性,也可能起基本作用。这表明 MD 模拟研究在成功工程抗菌肽以提高活性和其他理想功能方面非常有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/162a/3009542/dbb8f427fc2e/1471-2105-11-S1-S7-1.jpg

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