Department of Drug Design and Pharmacology, Faculty of Health and Medical Sciences, University of Copenhagen, Jagtvej 162, DK-2100 Copenhagen, Denmark.
Molecules. 2017 Aug 29;22(9):1430. doi: 10.3390/molecules22091430.
The rapid emergence of multidrug-resistant pathogens has evolved into a global health problem as current treatment options are failing for infections caused by pan-resistant bacteria. Hence, novel antibiotics are in high demand, and for this reason antimicrobial peptides (AMPs) have attracted considerable interest, since they often show broad-spectrum activity, fast killing and high cell selectivity. However, the therapeutic potential of natural AMPs is limited by their short plasma half-life. Antimicrobial peptidomimetics mimic the structure and biological activity of AMPs, but display extended stability in the presence of biological matrices. In the present review, focus is on the developments reported in the last decade with respect to their design, synthesis, antimicrobial activity, cytotoxic side effects as well as their potential applications as anti-infective agents. Specifically, only peptidomimetics with a modular structure of residues connected via amide linkages will be discussed. These comprise the classes of α-peptoids (-alkylated glycine oligomers), β-peptoids (-alkylated β-alanine oligomers), β³-peptides, α/β³-peptides, α-peptide/β-peptoid hybrids, α/γ -acylated -aminoethylpeptides (AApeptides), and oligoacyllysines (OAKs). Such peptidomimetics are of particular interest due to their potent antimicrobial activity, versatile design, and convenient optimization via assembly by standard solid-phase procedures.
耐药性病原体的迅速出现已经演变成一个全球性的健康问题,因为目前的治疗选择对泛耐药菌引起的感染已经失效。因此,人们非常需要新型抗生素,而抗菌肽(AMPs)因此引起了相当大的关注,因为它们通常具有广谱活性、快速杀菌和高细胞选择性。然而,天然 AMP 的治疗潜力受到其血浆半衰期短的限制。抗菌肽模拟物模仿 AMP 的结构和生物学活性,但在存在生物基质时显示出延长的稳定性。在本综述中,重点介绍了过去十年中在设计、合成、抗菌活性、细胞毒性副作用以及作为抗感染剂的潜在应用方面的发展。具体来说,仅讨论具有通过酰胺键连接的残基的模块化结构的肽模拟物。这些包括α-肽拟肽(- 烷基化甘氨酸寡聚物)、β-肽拟肽(- 烷基化 β-丙氨酸寡聚物)、β³-肽、α/β³-肽、α-肽/β-肽拟肽杂合体、α/γ-酰化 - 氨基乙基肽(AApeptides)和聚酰基赖氨酸(OAKs)。由于它们具有强大的抗菌活性、多样的设计以及通过标准固相程序进行组装的方便优化,因此这些肽模拟物特别有趣。