Mobility of Min-proteins in Escherichia coli measured by fluorescence correlation spectroscopy
arXiv:q-bio/0701046 · doi:10.1088/1478-3975/3/4/003
Abstract
In the bacterium Escherichia coli, selection of the division site involves pole-to-pole oscillations of the proteins MinD and MinE. Different oscillation mechanisms based on cooperative effects between Min-proteins and on the exchange of Min-proteins between the cytoplasm and the cytoplasmic membrane have been proposed. The parameters characterizing the dynamics of the Min-proteins in vivo are not known. It has therefore been difficult to compare the models quantitatively with experiments. Here, we present in vivo measurements of the mobility of MinD and MinE using fluorescence correlation spectroscopy. Two distinct time-scales are clearly visible in the correlation curves. While the faster time-scale can be attributed to cytoplasmic diffusion, the slower time-scale could result from diffusion of membrane-bound proteins or from protein exchange between the cytoplasm and the membrane. We determine the diffusion constant of cytoplasmic MinD to be approximately 16μ^{2}/s, while for MinE we find about 10μ^{2}/s, independently of the processes responsible for the slower time-scale. Implications of the measured values for the oscillation mechanism are discussed.
18 pages, 5 figures
References in corpus (3)
- Cellular organization by self-organization : mechanisms and models for Min protein dynamics
- Min-oscillations in Escherichia coli induced by interactions of membrane-bound proteins
- Min-protein oscillations in Escherichia coli with spontaneous formation of two-stranded filaments in a three-dimensional stochastic reaction-diffusion model
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