评价工程噬菌体ФEcSw内溶素对多重耐药大肠杆菌Sw1的抑菌活性。

IF 4.9 2区 医学 Q1 INFECTIOUS DISEASES
Maheswaran Easwaran , Rajiv Gandhi Govindaraj , Misagh Naderi , Michal Brylinski , Mahanama De Zoysa , Hyun-Jin Shin
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引用次数: 0

摘要

目的:噬菌体编码的内溶素作为新型抗菌剂的出现具有重要的前景,特别是针对日益增长的抗生素耐药细菌的威胁。因此,我们对噬菌体ФEcSw内溶素进行了研究,以提高其对多重耐药大肠杆菌Sw1的裂解活性,方法是在硅基识别关键残基的指导下进行定点诱变。方法:通过计算分析阐明蛋白质折叠模式,识别活性结构域,识别ФEcSw内溶素的关键残基。采用基于结构相似性的对接模拟来鉴定可能参与细菌肽聚糖(PG)识别和裂解的残基。从噬菌体ФEcSw中扩增、克隆、表达并纯化噬菌体内溶素。纯内溶素(EL)活性随后通过定点诱变验证。结果:我们的研究揭示了ФEcSw内溶素在特定残留范围内的开放和封闭构象(51-60和128-141)。值得注意的是,活性位点被确定并包含关键的催化残基Glu19和Asp34。一项时效试验表明,Holin (HL) - EL在12小时内有效地降低了大肠杆菌Sw1的生长46%。此外,HL、EL和HL-EL治疗在1小时内显著增加了细菌膜通透性(分别为11%、74%和85%)。重要的是,位点定向诱变鉴定出一种双突变体(K19/H34)的内溶素,与野生型和其他突变体(E19D, E19K, D34E和D34H)相比,由于净电荷从+3.23增加到+6.29,因此具有最高的裂解活性。结论:我们的研究结果表明,噬菌体内溶素和holins或工程内溶素作为对抗多重耐药细菌感染的治疗药物具有巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evaluating the antibacterial activity of engineered phage ФEcSw endolysin against multidrug-resistant Escherichia coli strain Sw1

Evaluating the antibacterial activity of engineered phage ФEcSw endolysin against multidrug-resistant Escherichia coli strain Sw1

Objective

The emergence of bacteriophage-encoded endolysins hold significant promise as novel antibacterial agents, particularly against the growing threat of antibiotic-resistant bacteria. Therefore, we investigated the phage ФEcSw endolysin to enhance the lytic activity against multi-drug-resistant Escherichia coli Sw1 through site-directed mutagenesis (SDM) guided by in silico identification of critical residues.

Methods

A computational analysis was conducted to elucidate the protein folding pattern, identify the active domains, and recognize critical residues of ФEcSw endolysin. Structural similarity-based docking simulations were employed to identify residues potentially involved in both recognition and cleavage of the bacterial peptidoglycan. Phage endolysin was amplified, cloned, expressed, and purified from phage ФEcSw. Pure endolysin (EL) activity was subsequently validated through SDM.

Results

Our studies revealed both open and closed conformations of ФEcSw endolysin within specific residue ranges (51–60 and 128–141). Notably, the active site was identified and contains the crucial catalytic residues, Glu19 and Asp34. A time-kill assay demonstrated that the holin (HL) – EL effectively reduced E. coli Sw1 growth by 46% within 12 h. Furthermore, treatment with HL, EL, and HL-EL significantly increased bacterial membrane permeability (11%, 74%, and 85%, respectively) within just 1 h. Importantly, SDM identified a double mutant (K19/H34) of the endolysin exhibiting the highest lytic activity compared to the wild-type and other mutants (E19D, E19K, D34E, and D34H) due to increase net charge from +3.23 to +6.29.

Conclusions

Our findings demonstrate that phage endolysins and HLs or engineered endolysin hold significant potential as therapeutic agents to combat multidrug-resistant bacterial infections.
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来源期刊
CiteScore
21.60
自引率
0.90%
发文量
176
审稿时长
36 days
期刊介绍: The International Journal of Antimicrobial Agents is a peer-reviewed publication offering comprehensive and current reference information on the physical, pharmacological, in vitro, and clinical properties of individual antimicrobial agents, covering antiviral, antiparasitic, antibacterial, and antifungal agents. The journal not only communicates new trends and developments through authoritative review articles but also addresses the critical issue of antimicrobial resistance, both in hospital and community settings. Published content includes solicited reviews by leading experts and high-quality original research papers in the specified fields.
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