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Cell biology of microbes and pharmacology of antimicrobial drugs explored by Atomic Force Microscopy

机译:原子力显微镜探索抗菌药物微生物和药理学的细胞生物学

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Antimicrobial molecules have been used for more than 50 years now and are the basis of modern medicine. No surgery can nowdays be imagined to be performed without antibiotics; dreadful diseases like tuberculosis, leprosis, siphilys, and more broadly all microbial induced diseases, can be cured only through the use of antimicrobial treatments. However, the situation is becoming more and more complex because of the ability of microbes to adapt, develop, acquire, and share mechanisms of resistance to antimicrobial agents. We choose to introduce this review by briefly drawing the panorama of antimicrobial discovery and development, but also of the emergence of microbial resistance. Then we describe how Atomic Force Microscopy (AFM) can be used to provide a better understanding of the mechanisms of action of these drugs at the nanoscale level on microbial interfaces. In this section, we will address these questions: (1) how does drug treatment affect the morphology of single microbes?; (2) do antimicrobial molecules modify the nanomechanical properties of microbes, or do the nanomechanical properties of microbes play a role in antimicrobial activity and efficiency?; and (3) how are the adhesive abilitites of microbes affected by antimicrobial drugs treatment? Finally, in a second part of this review we focus on recent studies aimed at changing the paradigm of the single molecule/cell technology that AFM typically represents. Recent work dealing with the creation of a microbe array which can be explored by AFM will be presented, as these developments constitute the first steps toward transforming AFM into a higher throughput technology. We also discuss papers using AFM as NanoMechnanicalSensors (NEMS), and demonstrate the interest of such approaches in clinical microbiology to detect quickly and with high accuracy microbial resistance. (C) 2017 Elsevier Ltd. All rights reserved.
机译:抗微生物分子已被使用现在超过50年,并且是现代医学的基础。现在,没有手术可以在没有抗生素的情况下进行想象的;令人毛骨悚然的疾病等肺结核,菌落,四肢细胞和更广泛的所有微生物诱导疾病,只能通过使用抗微生物治疗来治愈。然而,由于微生物适应,开发,获取和分享抗菌剂的机制,这种情况变得越来越复杂。我们选择通过简要介绍抗微生物发现和开发的全景,也选择介绍综述,也是微生物抗性的出现。然后,我们描述了原子力显微镜(AFM)如何用于提供对微生物界面上纳米级水平的这些药物的作用机制。在本节中,我们将解决这些问题:(1)药物治疗如何影响单微生物的形态? (2)抗微生物分子改变微生物的纳米力学性质,或者微生物的纳米机械性能在抗菌活性和效率中发挥作用吗? (3)受抗微生物药物治疗影响的微生物的粘合剂议率如何?最后,在本评价的第二部分中,我们专注于最近的研究,旨在改变AFM通常代表的单一分子/细胞技术的范式。随着这些发展构成将AFM转换为更高吞吐量技术的第一步,将提出最近的工作。我们还将使用AFM作为纳米金属置置置福克斯(NEMS)讨论论文,并证明临床微生物学该方法的兴趣以快速和高精度的微生物耐药性检测。 (c)2017 Elsevier Ltd.保留所有权利。

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