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革兰氏阴性菌溶素

Gram-Negative Bacterial Lysins.

作者信息

Ghose Chandrabali, Euler Chad W

机构信息

Bioharmony Therapeutics, New York, NY 10016, USA.

Department of Medical Laboratory Sciences, Hunter College, CUNY, New York, NY 10065, USA.

出版信息

Antibiotics (Basel). 2020 Feb 11;9(2):74. doi: 10.3390/antibiotics9020074.

Abstract

Antibiotics have had a profound impact on human society by enabling the eradication of otherwise deadly infections. Unfortunately, antibiotic use and overuse has led to the rapid spread of acquired antibiotic resistance, creating a major threat to public health. Novel therapeutic agents called bacteriophage endolysins (lysins) provide a solution to the worldwide epidemic of antibiotic resistance. Lysins are a class of enzymes produced by bacteriophages during the lytic cycle, which are capable of cleaving bonds in the bacterial cell wall, resulting in the death of the bacteria within seconds after contact. Through evolutionary selection of the phage progeny to be released and spread, these lysins target different critical components in the cell wall, making resistance to these molecules orders of magnitude less likely than conventional antibiotics. Such properties make lysins uniquely suitable for the treatment of multidrug resistant bacterial pathogens. Lysins, either naturally occurring or engineered, have the potential of being developed into fast-acting, narrow-spectrum, biofilm-disrupting antimicrobials that act synergistically with standard of care antibiotics. This review focuses on newly discovered classes of Gram-negative lysins with emphasis on prototypical enzymes that have been evaluated for efficacy against the major antibiotic resistant organisms causing nosocomial infections.

摘要

抗生素通过根除原本致命的感染对人类社会产生了深远影响。不幸的是,抗生素的使用和过度使用导致了获得性抗生素耐药性的迅速传播,对公共卫生构成了重大威胁。一种名为噬菌体溶菌酶(溶素)的新型治疗剂为全球抗生素耐药性流行提供了解决方案。溶素是噬菌体在裂解周期中产生的一类酶,能够裂解细菌细胞壁中的键,导致细菌在接触后几秒钟内死亡。通过对释放和传播的噬菌体后代进行进化选择,这些溶素靶向细胞壁中的不同关键成分,使得对这些分子产生耐药性的可能性比传统抗生素低几个数量级。这些特性使溶素特别适合用于治疗多重耐药细菌病原体。天然存在的或经过改造的溶素有可能被开发成快速起效、窄谱、破坏生物膜的抗菌剂,与标准护理抗生素协同作用。本综述重点关注新发现的革兰氏阴性溶素类别,尤其强调已针对引起医院感染的主要抗生素耐药生物体的疗效进行评估的典型酶。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6cb6/7168136/416e2d6b03ef/antibiotics-09-00074-g001.jpg

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