Antimicrobial peptide DiPGLa-H exhibits the most outstanding anti-infective activity among the PGLa variants based on a systematic comparison.

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2025-03-19 Epub Date: 2025-02-05 DOI:10.1128/aem.02062-24
Liangjun Zheng, Muhammad Zafir, Ziqian Zhang, Yadong Ma, Fengyi Yang, Xiaokun Wang, Xuemei Xue, Chen Wang, Ping Li, Pilong Liu, Fatma A El-Gohary, Xin Zhao, Huping Xue
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Abstract

The escalating threat of antibiotic-resistant bacteria has heightened global interest in antimicrobial peptides as promising candidates due to their potent broad-spectrum activity and low likelihood of resistance development. Despite this potential, these peptides face challenges, including modest bactericidal efficacy, insufficient safety assessment, and expensive production. In this study, we systematically evaluated a panel of nine AMP variants of PGLa, a natural AMP derived from Xenopus laevis. All peptides retained α-helical structures and exhibited high biocompatibility, with hemolytic concentrations above 128 µg/mL and macrophage survival rates over 80%. Among them, a tandem-repeat variant DiPGLa-H demonstrated the most potent antimicrobial activity, with a therapeutic index of 35.94, against key pathogens such as Escherichia coli, Staphylococcus aureus, and Acinetobacter baumannii. A DAMP4-DiPGLa-H fusion protein was engineered to mitigate potential host toxicity, and we achieved high-purity biosynthesis of DiPGLa-H by employing a combination of acid cleavage and non-chromatographic purification, with yields reaching 21.2 mg/mL. The biosynthesized DiPGLa-H exhibited robust stability across a wide pH range and high temperatures, effectively disrupting biofilms formed by multiple pathogenic species. Mechanistically, DiPGLa-H disrupts both the inner and outer bacterial membranes, causing cell shrinkage, vesiculation, and intracellular leakage. In vivo, DiPGLa-H significantly improved survival rates in mice with induced peritoneal inflammation by 31%-38% while reducing bacterial burdens in key organs by 100-fold to 1,000-fold. These findings unearthed DiPGLa-H as a highly promising AMP. Moreover, the successful development of a cost-effective, high-purity biosynthesis method for DiPGLa-H, utilizing DAMP4 fusion technology, enables its low-cost application in combating multidrug-resistant pathogens.

Importance: AMPs are innate defense molecules in animals, plants, and microorganisms. Notably, one-third of these peptides in databases originate from amphibians. We discovered that naturally weak AMPs from this source can be enhanced through artificial design. Specifically, variant DiPGLa-H showed superior germicidal efficacy and cell selectivity both in vivo and in vitro and can be biosynthesized and purified by combining DAMP4 fusion protein strategy and a simple non-chromatographic method that facilitates large-scale production. Our focus is on understanding the structure-activity relationships of PGLa. Furthermore, the development of a non-chromatographic purification technique for AMPs offers a viable pathway for the large-scale production of these essential compounds.

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由于抗生素耐药菌的威胁不断升级,全球对抗菌肽的兴趣日益浓厚,因为抗菌肽具有强大的广谱活性,而且产生耐药性的可能性较低。尽管这些肽具有这样的潜力,但它们也面临着一些挑战,包括杀菌效果一般、安全性评估不足以及生产成本昂贵。在这项研究中,我们系统地评估了从爪蟾中提取的天然 AMP PGLa 的九种 AMP 变体。所有肽都保留了α-螺旋结构,具有很高的生物相容性,溶血浓度超过128微克/毫升,巨噬细胞存活率超过80%。其中,串联重复变体 DiPGLa-H 对大肠杆菌、金黄色葡萄球菌和鲍曼不动杆菌等主要病原体具有最强的抗菌活性,治疗指数为 35.94。我们设计了一种 DAMP4-DiPGLa-H 融合蛋白来减轻潜在的宿主毒性,并通过酸裂解和非色谱纯化相结合的方法实现了 DiPGLa-H 的高纯度生物合成,产率达到 21.2 mg/mL。生物合成的 DiPGLa-H 在较宽的 pH 值范围和较高温度下都表现出很强的稳定性,能有效破坏多种病原体形成的生物膜。从机理上讲,DiPGLa-H 能破坏细菌的内膜和外膜,导致细胞萎缩、水泡和细胞内渗漏。在体内,DiPGLa-H 能将诱发腹膜炎小鼠的存活率显著提高 31%-38%,同时将关键器官中的细菌负担降低 100 倍至 1000 倍。这些发现使 DiPGLa-H 成为一种极具潜力的 AMP。此外,利用 DAMP4 融合技术,DiPGLa-H 的低成本、高纯度生物合成方法的成功开发,使其能够以低成本应用于抗击耐多药病原体:AMPs是动物、植物和微生物的先天防御分子。值得注意的是,数据库中三分之一的多肽来自两栖动物。我们发现,可以通过人工设计来增强这一来源的天然弱AMPs。具体来说,变体 DiPGLa-H 在体内和体外都显示出卓越的杀菌效力和细胞选择性,并且可以通过结合 DAMP4 融合蛋白策略和简单的非色谱法进行生物合成和纯化,从而促进大规模生产。我们的重点是了解 PGLa 的结构-活性关系。此外,AMPs 非色谱纯化技术的开发为大规模生产这些重要化合物提供了一条可行的途径。
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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
期刊最新文献
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