Bio-wave Research Center, Department of Laboratory Medicine, Third Military Medical University, Chongqing 400038, China.
Micron. 2014 Jan;56:44-8. doi: 10.1016/j.micron.2013.10.004. Epub 2013 Oct 16.
This study aimed to observe the multicellular spinning behavior of Proteus mirabilis by atomic force microscopy (AFM) and multifunctional microscopy in order to understand the mechanism underlying this spinning movement and its biological significance. Multifunctional microscopy with charge-coupled device (CCD) and real-time AFM showed changes in cell structure and shape of P. mirabilis during multicellular spinning movement. Specifically, the morphological characteristics of P. mirabilis, multicellular spinning dynamics, and unique movement were observed. Our findings indicate that the multicellular spinning behavior of P. mirabilis may be used to collect nutrients, perform colonization, and squeeze out competitors. The movement characteristics of P. mirabilis are vital to the organism's biological adaptability to the surrounding environment.
本研究旨在通过原子力显微镜(AFM)和多功能显微镜观察奇异变形杆菌的多细胞旋转行为,以了解这种旋转运动的机制及其生物学意义。多功能显微镜与电荷耦合器件(CCD)和实时 AFM 显示了奇异变形杆菌在多细胞旋转运动过程中细胞结构和形状的变化。具体而言,观察到了奇异变形杆菌的形态特征、多细胞旋转动力学和独特的运动方式。我们的研究结果表明,奇异变形杆菌的多细胞旋转行为可能用于收集营养物质、进行定植和挤出竞争者。奇异变形杆菌的运动特征对生物体适应周围环境的生物适应性至关重要。