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利用原子力显微镜对微生物病原体进行纳米级成像。

Nanoscale imaging of microbial pathogens using atomic force microscopy.

机构信息

Unité de Chimie des Interfaces, Université Catholique de Louvain, Croix du Sud 2/18, B-1348 Louvain-la-Neuve, Belgium.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2009 Mar-Apr;1(2):168-80. doi: 10.1002/wnan.18.

Abstract

The nanoscale exploration of microbes using atomic force microscopy (AFM) is an exciting research field that has expanded rapidly in the past years. Using AFM topographic imaging, investigators can visualize the surface structure of live cells under physiological conditions and with unprecedented resolution. In doing so, the effect of drugs and chemicals on the fine cell surface architecture can be monitored. Real-time imaging offers a means to follow dynamic events such as cell growth and division. In parallel, chemical force microscopy (CFM), in which AFM tips are modified with specific functional groups, allows researchers to measure interaction forces, such as hydrophobic forces, and to resolve nanoscale chemical heterogeneities on cells, on a scale of only approximately 25 functional groups. Lastly, molecular recognition imaging using spatially resolved force spectroscopy, dynamic recognition imaging or immunogold detection, enables microscopists to localize specific receptors, such as cell adhesion proteins or antibiotic binding sites. These noninvasive nanoscale analyses provide new avenues in pathogenesis research, particularly for investigating the action mode of antimicrobial drugs, and for elucidating the molecular basis of pathogen-host interactions.

摘要

利用原子力显微镜(AFM)对微生物进行纳米级探索是一个令人兴奋的研究领域,近年来发展迅速。利用 AFM 的形貌成像,研究人员可以在生理条件下以空前的分辨率可视化活细胞的表面结构。这样,就可以监测药物和化学物质对精细细胞表面结构的影响。实时成像提供了一种跟踪细胞生长和分裂等动态事件的方法。与此同时,化学力显微镜(CFM)可以在 AFM 探头上修饰特定的官能团,使研究人员能够测量相互作用力,如疏水力,并解析细胞上的纳米级化学不均匀性,解析尺度约为 25 个官能团。最后,利用空间分辨力谱学的分子识别成像、动态识别成像或免疫金检测,使显微镜能够定位特定的受体,如细胞黏附蛋白或抗生素结合位点。这些非侵入性的纳米级分析为发病机制研究提供了新途径,特别是用于研究抗菌药物的作用模式,以及阐明病原体-宿主相互作用的分子基础。

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