Jo Su Jin, Kwon Jun, Kim Sang Guen, Lee Seung-Jun
College of Veterinary Medicine and Research Institute for Veterinary Science, Seoul National University, Seoul 08826, Republic of Korea.
Laboratory of Veterinary Public Health, College of Veterinary Medicine, Jeonbuk National University, 79 Gobong-ro, Iksan City 54596, Republic of Korea.
Microorganisms. 2023 Sep 13;11(9):2311. doi: 10.3390/microorganisms11092311.
Amid the escalating challenges of antibiotic resistance, bacterial infections have emerged as a global threat. Bacteriophages (phages), viral entities capable of selectively infecting bacteria, are gaining momentum as promising alternatives to traditional antibiotics. Their distinctive attributes, including host specificity, inherent self-amplification, and potential synergy with antibiotics, render them compelling candidates. Phage engineering, a burgeoning discipline, involves the strategic modification of bacteriophages to enhance their therapeutic potential and broaden their applications. The integration of CRISPR-Cas systems facilitates precise genetic modifications, enabling phages to serve as carriers of functional genes/proteins, thereby enhancing diagnostics, drug delivery, and therapy. Phage engineering holds promise in transforming precision medicine, addressing antibiotic resistance, and advancing diverse applications. Emphasizing the profound therapeutic potential of phages, this review underscores their pivotal role in combatting bacterial diseases and highlights their significance in the post-antibiotic era.
在抗生素耐药性挑战不断升级的背景下,细菌感染已成为全球威胁。噬菌体作为能够选择性感染细菌的病毒实体,正作为传统抗生素的有前景替代品而日益受到关注。它们独特的属性,包括宿主特异性、固有的自我扩增能力以及与抗生素的潜在协同作用,使其成为极具吸引力的候选者。噬菌体工程作为一门新兴学科,涉及对噬菌体进行策略性改造,以增强其治疗潜力并拓宽其应用范围。CRISPR-Cas系统的整合有助于实现精确的基因改造,使噬菌体能够作为功能基因/蛋白质的载体,从而增强诊断、药物递送和治疗效果。噬菌体工程在变革精准医学、应对抗生素耐药性以及推进多种应用方面具有广阔前景。本综述强调了噬菌体的巨大治疗潜力,突显了它们在对抗细菌性疾病中的关键作用,并突出了它们在抗生素后时代的重要意义。