Plomp Marco, Leighton Terrance J, Wheeler Katherine E, Malkin Alexander J
BioSecurity and Nanosciences Laboratory, Lawrence Livermore National Laboratory, Livermore, California, USA.
Biophys J. 2005 Jan;88(1):603-8. doi: 10.1529/biophysj.104.049312. Epub 2004 Oct 22.
The capability to image single microbial cell surfaces at nanometer scale under native conditions would profoundly impact mechanistic and structural studies of pathogenesis, immunobiology, environmental resistance, and biotransformation. Here, using in vitro atomic force microscopy, we have directly visualized high-resolution native structures of bacterial endospores, including the exosporium and spore coats of four Bacillus species in air and water environments. Our results demonstrate that the mechanisms of spore coat self-assembly are similar to those described for inorganic and macromolecular crystallization. The dimensions of individual Bacillus atrophaeus spores decrease reversibly by 12% in response to a change in the environment from fully hydrated to air-dried state, establishing that the dormant spore is a dynamic physical structure. The interspecies distributions of spore length and width were determined for four species of Bacillus spores in water and air environments. The dimensions of individual spores differ significantly depending upon species, growth regimes, and environmental conditions. These findings may be useful in the reconstruction of environmental and physiological conditions during spore formation and for modeling the inhalation and dispersal of spores. This study provides a direct insight into molecular architecture and structural variability of bacterial endospores as a function of spatial and developmental organizational scales.
在自然条件下对单个微生物细胞表面进行纳米级成像的能力,将对发病机制、免疫生物学、环境抗性和生物转化的机理及结构研究产生深远影响。在此,我们利用体外原子力显微镜,直接观察到了细菌芽孢的高分辨率天然结构,包括在空气和水环境中四种芽孢杆菌属细菌的芽孢外壁和芽孢衣。我们的结果表明,芽孢衣自组装的机制与无机和大分子结晶的机制相似。萎缩芽孢杆菌单个芽孢的尺寸会随着环境从完全水合状态变为风干状态而可逆地减小12%,这表明休眠芽孢是一种动态的物理结构。我们测定了四种芽孢杆菌属芽孢在水和空气环境中的长度和宽度的种间分布。单个芽孢的尺寸因物种、生长方式和环境条件的不同而有显著差异。这些发现可能有助于重建芽孢形成过程中的环境和生理条件,以及模拟芽孢的吸入和扩散。本研究直接深入了解了细菌芽孢的分子结构和结构变异性与空间和发育组织尺度的关系。