Sun Qingqing, Shen Lixin, Zhang Bai-Ling, Yu Jiaoyang, Wei Fu, Sun Yanmei, Chen Wei, Wang Shiwei
Key Laboratory of Resources Biology and Biotechnology in Western China, Ministry of Education, Provincial Key Laboratory of Biotechnology of Shaanxi Province, the College of Life Sciences, Northwest University, Xi'an, 710069, People's Republic of China.
Department of Laboratory Medicine, The Second Affiliated Hospital of Nanchang University, Nanchang, 330006, People's Republic of China.
Infect Drug Resist. 2023 Mar 31;16:1941-1953. doi: 10.2147/IDR.S402962. eCollection 2023.
Since bacteriophages (phages) were firstly reported at the beginning of the 20th century, the study on them experiences booming-fading-emerging with discovery and overuse of antibiotics. Although they are the hotspots for therapy of antibiotic-resistant strains nowadays, natural phage applications encounter some challenges such as limited host range and bacterial resistance to phages. Synthetic biology, one of the most dramatic directions in the recent 20-years study of microbiology, has generated numerous methods and tools and has contributed a lot to understanding phage evolution, engineering modification, and controlling phage-bacteria interactions. In order to better modify and apply phages by using synthetic biology techniques in the future, in this review, we comprehensively introduce various strategies on engineering or modification of phage genome and rebooting of recombinant phages, summarize the recent researches and potential directions of phage synthetic biology, and outline the current application of engineered phages in practice.
自20世纪初首次报道噬菌体以来,随着抗生素的发现和过度使用,对噬菌体的研究经历了兴起—衰落—再兴起的过程。尽管噬菌体如今是治疗耐药菌株的热点,但天然噬菌体的应用面临一些挑战,如宿主范围有限和细菌对噬菌体产生抗性。合成生物学是近20年来微生物学研究中最具活力的方向之一,它产生了众多方法和工具,为理解噬菌体进化、工程改造以及控制噬菌体与细菌的相互作用做出了很大贡献。为了未来能更好地利用合成生物学技术改造和应用噬菌体,在本综述中,我们全面介绍了噬菌体基因组工程或改造以及重组噬菌体重新构建的各种策略,总结了噬菌体合成生物学的最新研究及潜在方向,并概述了工程噬菌体在实际中的应用现状。