Sorbonne Universités, UPMC Univ Paris 06, 75005 Paris, France.
Physics Department, University of Milan, Via Celoria 16, 20133 Milano, Italy.
Phys Rev E. 2017 Oct;96(4-1):042402. doi: 10.1103/PhysRevE.96.042402. Epub 2017 Oct 4.
The short-time dynamics of bacterial chromosomal loci is a mixture of subdiffusive and active motion, in the form of rapid relocations with near-ballistic dynamics. While previous work has shown that such rapid motions are ubiquitous, we still have little grasp on their physical nature, and no positive model is available that describes them. Here, we propose a minimal theoretical model for loci movements as a fractional Brownian motion subject to a constant but intermittent driving force, and compare simulations and analytical calculations to data from high-resolution dynamic tracking in E. coli. This analysis yields the characteristic time scales for intermittency. Finally, we discuss the possible shortcomings of this model, and show that an increase in the effective local noise felt by the chromosome associates to the active relocations.
细菌染色体位置的短时动力学是亚扩散和主动运动的混合,表现为具有近弹道动力学的快速重定位。虽然之前的工作表明这种快速运动是普遍存在的,但我们仍然对它们的物理性质几乎没有把握,也没有可用的正模型来描述它们。在这里,我们提出了一个最小的理论模型,用于作为分数布朗运动的位置运动,受到恒定但间歇的驱动力的影响,并将模拟和分析计算与大肠杆菌中高分辨率动态跟踪的数据进行比较。该分析得出了间歇性的特征时间尺度。最后,我们讨论了该模型的可能缺陷,并表明染色体感受到的有效局部噪声的增加与主动重定位有关。