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拓展对Epsilon15噬菌体DNA包装装置和内溶素LysSA05功能的结构认识。

Expanding structural insights into DNA packaging apparatus and endolysin LysSA05 function of Epsilon15 bacteriophage.

作者信息

Khan Muhammad Saleem Iqbal, Wu Ju, Ji Shenlin, Tan Demeng, Sui Bingrui, Peng Shanshan, Zhan Jinbiao, Yin Jiajun

机构信息

Department of General Surgery, Affiliated Zhongshan Hospital of Dalian University, Dalian, Liaoning, China.

Shanghai Public Health Clinical Center, Fudan University, Shanghai, China.

出版信息

Front Cell Infect Microbiol. 2025 Aug 14;15:1643576. doi: 10.3389/fcimb.2025.1643576. eCollection 2025.

Abstract

The rising prevalence of multidrug-resistant (MDR) foodborne pathogens, particularly spp., necessitates alternative antimicrobial solutions. Phage therapy offers a promising solution against MDR Gram-negative infections; however, its clinical application is constrained by the presence of endotoxins, residual cellular debris, the risk of horizontal gene transfer by temperate phages, and an incomplete understanding of how phage structural integrity influences infectivity and enzyme function. In this study, we present a structural and functional analysis of temperate bacteriophage Epsilon15 (ϵ15), focusing on its DNA packaging and injection machinery, along with characterization of the dual-acting endolysin LysSA05. Iodixanol-purified virions suspended in phosphate-buffered saline (PBS), under conditions optimized to preserve virion stability, were analyzed using graphene oxide (GO)-supported cryo-electron microscopy. This approach resolved the full asymmetric architecture of ϵ15, revealing a detailed internal nucleic acid organization with at least eight concentric layers radially and approximately 28 axially compacted layers within the capsid. The DNA packaging machinery, comprising the core, portal, and hub, was resolved at high resolution, including a 42 nm-long and 18 nm-wide injection channel anchored by a dodecameric portal complex visualized at ~7 Å resolution. Concurrently, we characterized LysSA05, a dual-acting endolysin harboring a glycoside hydrolase 19 (GH19) catalytic domain accommodating peptidoglycan (PG) residues -acetylmuramic acid (NAM) and -acetylglucosamine (NAG) through structural docking, indicating plausible binding interactions that promote hydrolysis support vector machine (SVM), random forest (RF), discriminant analysis (DA), artificial neural network (ANN) and physicochemical scanning identified an amphipathic helix (residues 59-112) with predicted antimicrobial peptide (AMP)-like properties. Biochemical validation confirmed that LysSA05 destabilizes lipopolysaccharides (LPS) and permeabilizes the outer membrane of Gram-negative bacteria independently of permeabilizers, with enhanced efficacy observed upon co-treatment with Ethylenediaminetetraacetic acid (EDTA) or citric acid. In summary, our findings elucidate key structural features of ϵ15 relevant to infection and genome delivery, while positioning LysSA05 as a promising enzybiotic candidate against MDR Gram-negative pathogens.

摘要

多重耐药(MDR)食源性病原体,尤其是[具体菌种]的流行率不断上升,因此需要替代性抗菌解决方案。噬菌体疗法为对抗耐多药革兰氏阴性菌感染提供了一种有前景的解决方案;然而,其临床应用受到内毒素、残留细胞碎片的存在、温和噬菌体水平基因转移的风险以及对噬菌体结构完整性如何影响感染性和酶功能的不完全理解的限制。在本研究中,我们对温和噬菌体Epsilon15(ϵ15)进行了结构和功能分析,重点关注其DNA包装和注射机制,以及双功能溶菌酶LysSA05的特性。在优化以保持病毒体稳定性的条件下,使用氧化石墨烯(GO)支持的冷冻电子显微镜对悬浮在磷酸盐缓冲盐水(PBS)中的碘克沙醇纯化病毒体进行了分析。这种方法解析了ϵ15的完整不对称结构,揭示了详细的内部核酸组织,在衣壳内径向至少有八个同心层,轴向约有28个紧密层。由核心、门户和枢纽组成的DNA包装机制在高分辨率下得到解析,包括一个42纳米长、18纳米宽的注射通道,由一个十二聚体门户复合体锚定,在约7埃分辨率下可见。同时,我们对LysSA05进行了特性分析,它是一种双功能溶菌酶,具有糖苷水解酶19(GH19)催化结构域,通过结构对接容纳肽聚糖(PG)残基 - 乙酰胞壁酸(NAM)和 - 乙酰葡糖胺(NAG),表明促进水解的合理结合相互作用 支持向量机(SVM)、随机森林(RF)、判别分析(DA)、人工神经网络(ANN)和物理化学扫描确定了一个具有预测抗菌肽(AMP)样特性的两亲性螺旋(残基59 - 112)。生化验证证实,LysSA05能使脂多糖(LPS)不稳定,并使革兰氏阴性菌的外膜通透性增加,且无需通透剂,与乙二胺四乙酸(EDTA)或柠檬酸联合处理时效果增强。总之,我们的研究结果阐明了与感染和基因组传递相关的ϵ15的关键结构特征,同时将LysSA05定位为对抗耐多药革兰氏阴性病原体的有前景的酶生物制剂候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2928/12391199/4fae1adbe4e2/fcimb-15-1643576-g001.jpg

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