Molecular Dynamic Study on the Structure and Thermal Stability of Mutant Pediocin PA-1 Peptides Engineered with Cysteine Substitutions.

IF 4.4 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Probiotics and Antimicrobial Proteins Pub Date : 2025-06-01 Epub Date: 2024-03-01 DOI:10.1007/s12602-024-10225-3
Büşra Sevim, Evrim Güneş Altuntaş
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Abstract

Pediocin and analogous bacteriocins, valued for thermal stability, serve as versatile antimicrobials in the food sector. Improving their resilience at high temperatures and deriving derivatives not only benefit food production but also offer broad-spectrum antimicrobial potential in pharmaceuticals, spanning treatments for peptic ulcers, women's health, and novel anticancer agents. The study aims to create mutant peptides capable of establishing a third disulfide bond or enhanced through cysteine substitutions. This involves introducing additional Cys residues into the inherent structure of pediocin PA-1 to facilitate disulfide bond formation. Five mutants (Mut 1-5) were systematically generated with double Cys substitutions and assessed for thermal stability through MD simulations across temperatures (298-394 K). The most robust mutants (Mut 1, Mut 4-5) underwent extended analysis via MD simulations, comparing their structural stability, secondary structure, and surface accessibility to the reference Pediocin PA-1 molecule. This comprehensive assessment aims to understand how Cys substitutions influence disulfide bonds and the overall thermal stability of the mutant peptides. In silico analysis indicated that Mut 1 and Mut 5, along with the reference structure, lose their helical structure and one natural disulfide bond at high temperatures, and may impacting antimicrobial activity. Conversely, Mut 4 retained its helical structure and exhibited thermal stability similar to Pediocin PA-1. Pending further experimental validation, this study implies Mut 4 may have high stability and exceptional resistance to high temperatures, potentially serving as an effective antimicrobial alternative.

Abstract Image

半胱氨酸置换突变 Pediocin PA-1 肽的结构和热稳定性的分子动力学研究。
Pediocin 和类似细菌素具有热稳定性,是食品行业的多功能抗菌剂。提高它们在高温下的适应性并衍生出衍生物,不仅有利于食品生产,还能在制药领域提供广谱抗菌潜力,包括治疗消化性溃疡、妇女健康和新型抗癌剂。这项研究旨在创造能够建立第三个二硫键的突变肽,或通过半胱氨酸置换来增强这种能力。这包括在足叶素 PA-1 的固有结构中引入额外的 Cys 残基,以促进二硫键的形成。通过双 Cys 取代系统地生成了五个突变体(突变 1-5),并通过 MD 模拟评估了这些突变体在不同温度(298-394 K)下的热稳定性。最稳健的突变体(突变 1、突变 4-5)通过 MD 模拟进行了扩展分析,将其结构稳定性、二级结构和表面可及性与参考 Pediocin PA-1 分子进行了比较。这项综合评估旨在了解 Cys 取代如何影响二硫键以及突变肽的整体热稳定性。硅学分析表明,突变体 1 和突变体 5 以及参考结构在高温下会失去螺旋结构和一个天然二硫键,可能会影响抗菌活性。相反,变异 4 保留了其螺旋结构,并表现出与 Pediocin PA-1 相似的热稳定性。在进一步的实验验证之前,这项研究意味着突变体 4 可能具有高稳定性和优异的耐高温性,有可能成为一种有效的抗菌剂替代品。
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来源期刊
Probiotics and Antimicrobial Proteins
Probiotics and Antimicrobial Proteins BIOTECHNOLOGY & APPLIED MICROBIOLOGYMICROB-MICROBIOLOGY
CiteScore
11.30
自引率
6.10%
发文量
140
期刊介绍: Probiotics and Antimicrobial Proteins publishes reviews, original articles, letters and short notes and technical/methodological communications aimed at advancing fundamental knowledge and exploration of the applications of probiotics, natural antimicrobial proteins and their derivatives in biomedical, agricultural, veterinary, food, and cosmetic products. The Journal welcomes fundamental research articles and reports on applications of these microorganisms and substances, and encourages structural studies and studies that correlate the structure and functional properties of antimicrobial proteins.
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