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超越材料科学的 Zeta 电位:在细菌系统和新型抗菌药物开发中的应用。

Zeta potential beyond materials science: Applications to bacterial systems and to the development of novel antimicrobials.

机构信息

Laboratorio de Compuestos Bioactivos, Centro de Investigaciones en Biofísica Aplicada y Alimentos (CIBAAL), CONICET - Universidad Nacional de Santiago del Estero, RN 9, Km 1125, 4206 Santiago del Estero, Argentina.

Laboratorio de Compuestos Bioactivos, Centro de Investigaciones en Biofísica Aplicada y Alimentos (CIBAAL), CONICET - Universidad Nacional de Santiago del Estero, RN 9, Km 1125, 4206 Santiago del Estero, Argentina; Facultad de Ciencias Médicas, Universidad Nacional de Santiago del Estero, Calle Reforma del 18 N 1234, 4200 Santiago del Estero, Argentina.

出版信息

Biochim Biophys Acta Biomembr. 2021 Jun 1;1863(6):183597. doi: 10.1016/j.bbamem.2021.183597. Epub 2021 Feb 27.

DOI:10.1016/j.bbamem.2021.183597
PMID:33652005
Abstract

This review summarizes the theory of zeta potential (ZP) and the most relevant data about how it has been used for studying bacteria. We have especially focused on the discovery and characterization of novel antimicrobial compounds. The ZP technique may be considered an indirect tool to estimate the surface potential of bacteria, a physical characteristic that is key to maintaining optimal cell function. For this reason, targeting the bacterial surface is of paramount interest in the development of new antimicrobials. Surface-acting agents have been found to display a remarkable bactericidal effect and have simultaneously revealed a low tendency to trigger resistance. Changes in the bacterial surface as a result of various processes can also be followed by ZP measurements. However, due to the complexity of the bacterial surface, some considerations regarding the assessment of ZP must first be taken into account. Evidence on the application of ZP measurements to the characterization of bacteria and biofilm formation is presented next. We finally discuss the feasibility of using the ZP technique to assess antimicrobial-induced changes in the bacterial surface. Among these changes are those related to the interaction of the agent with different components of the cell envelope, membrane permeabilization, and loss of viability.

摘要

本文综述了动电电位(ZP)的理论以及关于其在研究细菌方面的应用的最相关数据。我们特别关注了新型抗菌化合物的发现和特性。ZP 技术可被视为间接估计细菌表面电位的工具,而表面电位是维持细胞最佳功能的关键物理特性。出于这个原因,靶向细菌表面是开发新型抗菌药物的首要目标。已经发现表面活性剂具有显著的杀菌作用,同时显示出低引发耐药性的倾向。ZP 测量还可以跟踪由于各种过程导致的细菌表面的变化。然而,由于细菌表面的复杂性,在评估 ZP 时必须首先考虑一些注意事项。接下来介绍了 ZP 测量在细菌表征和生物膜形成方面的应用证据。我们最后讨论了使用 ZP 技术评估抗菌剂诱导的细菌表面变化的可行性。这些变化包括与药剂与细胞包膜不同成分的相互作用、膜通透性和生存力丧失相关的变化。

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