Clarke Margaret, Maddera Lucinda, Harris Robin L, Silverman Philip M
Genetic Models of Disease Research Program, Oklahoma Medical Research Foundation, 825 NE 13th Street, Oklahoma City, OK 73104, USA.
Proc Natl Acad Sci U S A. 2008 Nov 18;105(46):17978-81. doi: 10.1073/pnas.0806786105. Epub 2008 Nov 12.
Bacteria have evolved numerous mechanisms for cell-cell communication, many of which have important consequences for human health. Among these is conjugation, the direct transfer of DNA from one cell to another. For gram-negative bacteria, conjugation requires thin, flexible filaments (conjugative pili) that are elaborated by DNA donor cells. The structure, function, and especially the dynamics of conjugative pili are poorly understood. Here, we have applied live-cell imaging to characterize the dynamics of F-pili (conjugative pili encoded by the F plasmid of Escherichia coli). We establish that F-pili normally undergo cycles of extension and retraction in the absence of any obvious triggering event, such as contact with a recipient cell. When made, such contacts are able to survive the shear forces felt by bacteria in liquid media. Our data emphasize the role of F-pilus flexibility both in efficiently sampling a large volume surrounding donor cells in liquid culture and in establishing and maintaining cell-cell contact. Additionally and unexpectedly, we infer that extension and retraction are accompanied by rotation about the long axis of the filament.
细菌已经进化出多种细胞间通讯机制,其中许多对人类健康具有重要影响。其中包括接合作用,即DNA从一个细胞直接转移到另一个细胞。对于革兰氏阴性菌而言,接合作用需要由DNA供体细胞产生的细而柔韧的丝状物(接合菌毛)。人们对接合菌毛的结构、功能,尤其是动力学了解甚少。在这里,我们应用活细胞成像技术来表征F菌毛(由大肠杆菌F质粒编码的接合菌毛)的动力学。我们确定,在没有任何明显触发事件(如与受体细胞接触)的情况下,F菌毛通常会经历伸展和收缩循环。当发生这种接触时,它们能够承受细菌在液体培养基中所感受到的剪切力。我们的数据强调了F菌毛柔韧性在有效探测液体培养中供体细胞周围的大量空间以及建立和维持细胞间接触方面的作用。此外,出乎预料的是,我们推断伸展和收缩伴随着围绕丝状物长轴的旋转。