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一种新型噬菌体EF-M80:揭示水凝胶包裹的噬菌体对伤口感染愈合的影响

A novel phage EF-M80: unveiling the effects of hydrogel-encapsulated phage on wound infection healing.

作者信息

Khazani Asforooshani Mahshid, Elikaei Ameneh, Abed Sahar, Shafiei Morvarid, Barzi Seyed Mahmoud, Solgi Hamid, Badmasti Farzad, Sohrabi Aria

机构信息

Department of Microbiology, Faculty of Biological Sciences, Alzahra University, Tehran, Iran.

Department of Bacteriology, Pasteur Institute of Iran, Tehran, Iran.

出版信息

Front Microbiol. 2024 Jun 28;15:1416971. doi: 10.3389/fmicb.2024.1416971. eCollection 2024.

Abstract

BACKGROUND

is one of the members of ESKAPE pathogens. Due to its resistance to antimicrobial agents, treating this bacterium has become challenging. The development of innovative approaches to combat antibiotic resistance is necessary. Phage therapy has emerged as a promising method for curing antibiotic-resistant bacteria.

METHODS

In this study, phages were isolated from wastewater. Phage properties were characterized through assays ( morphological studies, and physicochemical properties). In addition, whole genome sequencing was performed. A hydrogel-based encapsulated phage was obtained and its structure characteristics were evaluated. Wound healing activity of the hydrogel-based phage was assessed in a wound mice model.

RESULTS

The purified phage showed remarkable properties including broad host range, tolerance to high temperature and pH and biofilm degradation feature as a stable and reliable therapeutic agent. Whole genome sequencing revealed that the genome of the EF-M80 phage had a length of 40,434 bp and harbored 65 open reading frames (ORFs) with a GC content of 34.9% (GenBank accession number is OR767211). Hydrogel-based encapsulated phage represented an optimized structure. Phage-loaded hydrogel-treated mice showed that the counting of neutrophils, fibroblasts, blood vessels, hair follicles and percentage of collagen growth were in favor of the wound healing process in the mice model.

CONCLUSION

These findings collectively suggest the promising capability of this phage-based therapeutic strategy for the treatment of infections associated with the antibiotic-resistant . In the near future, we hope to expect the presence of bacteriophages in the list of antibacterial compounds used in the clinical settings.

摘要

背景

是ESKAPE病原体成员之一。由于其对抗菌剂具有抗性,治疗这种细菌已变得具有挑战性。开发对抗抗生素耐药性的创新方法是必要的。噬菌体疗法已成为治疗抗生素耐药细菌的一种有前景的方法。

方法

在本研究中,从废水中分离出噬菌体。通过测定(形态学研究和物理化学性质)对噬菌体特性进行表征。此外,还进行了全基因组测序。获得了一种基于水凝胶的包封噬菌体,并对其结构特征进行了评估。在伤口小鼠模型中评估了基于水凝胶的噬菌体的伤口愈合活性。

结果

纯化后的噬菌体表现出显著特性,包括宿主范围广、耐高温和pH以及具有生物膜降解功能,是一种稳定可靠的治疗剂。全基因组测序显示,EF-M80噬菌体的基因组长度为40434 bp,含有65个开放阅读框(ORF),GC含量为34.9%(GenBank登录号为OR767211)。基于水凝胶的包封噬菌体呈现出优化的结构。负载噬菌体的水凝胶处理的小鼠显示,中性粒细胞、成纤维细胞、血管、毛囊的计数以及胶原蛋白生长百分比均有利于小鼠模型中的伤口愈合过程。

结论

这些发现共同表明这种基于噬菌体的治疗策略在治疗与抗生素耐药相关感染方面具有广阔前景。在不久的将来,我们希望看到噬菌体出现在临床使用的抗菌化合物名单中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ced/11239553/7b84df471537/fmicb-15-1416971-g001.jpg

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