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水杨酸和致病菌:一种老化合物的新视角。

Salicylic acids and pathogenic bacteria: new perspectives on an old compound.

机构信息

Department of Microbiology, University of Manitoba, Winnipeg, MB, Canada.

出版信息

Can J Microbiol. 2024 Jan 1;70(1):1-14. doi: 10.1139/cjm-2023-0123. Epub 2023 Sep 12.

Abstract

Salicylic acids have been used in human and veterinary medicine for their anti-pyretic, anti-inflammatory, and analgesic properties for centuries. A key role of salicylic acid-immune modulation in response to microbial infection-was first recognized during studies of their botanical origin. The effects of salicylic acid on bacterial physiology are diverse. In many cases, they impose selective pressures leading to development of cross-resistance to antimicrobial compounds. Initial characterization of these interactions was in , where salicylic acid activates the multiple antibiotic resistance () operon, resulting in decreased antibiotic susceptibility. Studies suggest that stimulation of the phenotype presents similarly in closely related . Salicylic acids also affect virulence in many opportunistic pathogens by decreasing their ability to form biofilms and increasing persister cell populations. It is imperative to understand the effects of salicylic acid on bacteria of various origins to illuminate potential links between environmental microbes and their clinically relevant antimicrobial-resistant counterparts. This review provides an update on known effects of salicylic acid and key derivatives on a variety of bacterial pathogens, offers insights to possible potentiation of current treatment options, and highlights cellular regulatory networks that have been established during the study of this important class of medicines.

摘要

水杨酸在人类和兽医医学中被广泛应用,因其具有解热、抗炎和镇痛的特性,已有数个世纪之久。水杨酸在应对微生物感染时的免疫调节作用是其在植物学起源研究中首次被发现的一个关键特性。水杨酸对细菌生理学的影响是多种多样的。在许多情况下,它们会产生选择性压力,导致对抗菌化合物产生交叉耐药性。这些相互作用的最初特征在于,水杨酸激活了多重抗生素耐药()操纵子,导致抗生素敏感性降低。研究表明,在密切相关的中,刺激表型的作用也相似。水杨酸还通过降低生物膜形成能力和增加持久性细胞群体来影响许多机会性病原体的毒力。了解水杨酸对各种来源的细菌的影响对于阐明环境微生物与其临床相关的抗微生物耐药对应物之间的潜在联系至关重要。本综述提供了水杨酸和关键衍生物对各种细菌病原体的已知影响的最新信息,为当前治疗方案的可能增效提供了见解,并强调了在研究这一重要药物类别时建立的细胞调控网络。

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