Université catholique de Louvain, Institute of Life Sciences, Croix du Sud, 1, bte L7.04.01, B-1348 Louvain-la-Neuve, Belgium.
Université catholique de Louvain, Institute of Life Sciences, Croix du Sud, 4-5, bte L7.07.06, B-1348 Louvain-la-Neuve, Belgium.
Nat Commun. 2013;4:2926. doi: 10.1038/ncomms3926.
Force-distance (FD) curve-based atomic force microscopy is a valuable tool to simultaneously image the structure and map the biophysical properties of biological samples at the nanoscale. Traditionally, FD-based atomic force microscopy has been severely limited by its poor temporal and lateral resolutions. Here we report the use of advanced FD-based technology combined with biochemically sensitive tips to image filamentous bacteriophages extruding from living bacteria at unprecedented speed and resolution. Directly correlated multiparametric images of the structure, adhesion and elasticity of infected bacteria demonstrate that the sites of assembly and extrusion localize at the bacterial septum in the form of soft nanodomains surrounded by stiff cell wall material. The quantitative nano-bio-imaging method presented here offers a wealth of opportunities for mapping the physical properties and molecular interactions of complex biosystems, from viruses to tissues.
基于力-距离(FD)曲线的原子力显微镜是一种非常有价值的工具,可用于在纳米尺度上同时对生物样本的结构进行成像并绘制其生物物理特性图谱。传统上,基于 FD 的原子力显微镜受到其时间和横向分辨率较差的严重限制。在这里,我们报告了使用先进的基于 FD 的技术与生物化学敏感尖端相结合,以前所未有的速度和分辨率对从活细菌中挤出的丝状噬菌体进行成像。感染细菌的结构、粘附和弹性的直接相关多参数图像表明,组装和挤出的部位以软纳米域的形式定位于细菌隔膜处,这些软纳米域被坚硬的细胞壁材料包围。这里提出的定量纳米生物成像方法为绘制从病毒到组织等复杂生物系统的物理特性和分子相互作用提供了丰富的机会。