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迈向抗菌肽的稳健递送以对抗细菌耐药性。

Towards Robust Delivery of Antimicrobial Peptides to Combat Bacterial Resistance.

机构信息

Department of Chemistry, University of British Columbia, 2036 Main Mall, Vancouver, BC V6T 1Z1, Canada.

Department of Pathology and Laboratory Medicine, and Centre for Blood Research, University of British Columbia, 2350 Health Sciences Mall, Life Sciences Centre, Vancouver, BC V6T 1Z3, Canada.

出版信息

Molecules. 2020 Jul 3;25(13):3048. doi: 10.3390/molecules25133048.

Abstract

Antimicrobial peptides (AMPs), otherwise known as host defence peptides (HDPs), are naturally occurring biomolecules expressed by a large array of species across the phylogenetic kingdoms. They have great potential to combat microbial infections by directly killing or inhibiting bacterial activity and/or by modulating the immune response of the host. Due to their multimodal properties, broad spectrum activity, and minimal resistance generation, these peptides have emerged as a promising response to the rapidly concerning problem of multidrug resistance (MDR). However, their therapeutic efficacy is limited by a number of factors, including rapid degradation, systemic toxicity, and low bioavailability. As such, many strategies have been developed to mitigate these limitations, such as peptide modification and delivery vehicle conjugation/encapsulation. Oftentimes, however, particularly in the case of the latter, this can hinder the activity of the parent AMP. Here, we review current delivery strategies used for AMP formulation, focusing on methodologies utilized for targeted infection site release of AMPs. This specificity unites the improved biocompatibility of the delivery vehicle with the unhindered activity of the free AMP, providing a promising means to effectively translate AMP therapy into clinical practice.

摘要

抗菌肽(AMPs),也称为宿主防御肽(HDPs),是在进化王国的众多物种中表达的天然存在的生物分子。它们具有直接杀死或抑制细菌活性和/或调节宿主免疫反应的巨大潜力,从而有希望对抗微生物感染。由于其多模态特性、广谱活性和最小耐药性产生,这些肽已成为应对日益严重的多药耐药性(MDR)问题的有前途的对策。然而,由于多种因素的限制,包括快速降解、全身毒性和低生物利用度,它们的治疗效果受到限制。因此,已经开发了许多策略来减轻这些限制,例如肽修饰和载体偶联/包封。然而,通常情况下,特别是在后一种情况下,这会阻碍母体 AMP 的活性。在这里,我们回顾了 AMP 配方中使用的当前输送策略,重点介绍了用于靶向 AMP 释放的方法学。这种特异性将载体的改善的生物相容性与游离 AMP 的无阻碍的活性结合在一起,为将 AMP 治疗有效地转化为临床实践提供了有前途的手段。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0efe/7412191/27cdb159a12b/molecules-25-03048-g001.jpg

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