Melbourne Dental School, Centre for Oral Health Research, University of Melbourne, VIC 3010, Australia.
Bio21 Institute, University of Melbourne, VIC 3010, Australia and School of Chemistry, University of Melbourne, VIC 3010, Australia.
Chem Soc Rev. 2021 Apr 26;50(8):4932-4973. doi: 10.1039/d0cs01026j.
Antimicrobial resistance (AMR) is one of the greatest threats to human health that, by 2050, will lead to more deaths from bacterial infections than cancer. New antimicrobial agents, both broad-spectrum and selective, that do not induce AMR are urgently required. Antimicrobial peptides (AMPs) are a novel class of alternatives that possess potent activity against a wide range of Gram-negative and positive bacteria with little or no capacity to induce AMR. This has stimulated substantial chemical development of novel peptide-based antibiotics possessing improved therapeutic index. This review summarises recent synthetic efforts and their impact on analogue design as well as their various applications in AMP development. It includes modifications that have been reported to enhance antimicrobial activity including lipidation, glycosylation and multimerization through to the broad application of novel bio-orthogonal chemistry, as well as perspectives on the direction of future research. The subject area is primarily the development of next-generation antimicrobial agents through selective, rational chemical modification of AMPs. The review further serves as a guide toward the most promising directions in this field to stimulate broad scientific attention, and will lead to new, effective and selective solutions for the several biomedical challenges to which antimicrobial peptidomimetics are being applied.
抗菌药物耐药性(AMR)是对人类健康的最大威胁之一,到 2050 年,因细菌感染而导致的死亡人数将超过癌症。目前迫切需要开发新型抗菌药物,包括广谱和选择性的,且不会诱导 AMR。抗菌肽(AMPs)是一种新型替代品,对革兰氏阴性和阳性细菌具有强大的活性,几乎或根本不会诱导 AMR。这极大地刺激了新型基于肽的抗生素的化学开发,具有改善的治疗指数。本文综述了最近的合成进展及其对类似物设计的影响,以及它们在 AMP 开发中的各种应用。其中包括已报道的增强抗菌活性的修饰,包括通过脂质化、糖基化和多聚化来提高抗菌活性,以及广泛应用新型生物正交化学,以及对未来研究方向的展望。该主题领域主要是通过 AMP 的选择性、合理的化学修饰来开发下一代抗菌药物。本综述进一步为该领域最有前途的方向提供了指导,以激发广泛的科学关注,并为抗菌肽模拟物应用的几个生物医学挑战提供新的、有效和选择性的解决方案。