Zhang Bin, Wolynes Peter G
Department of Chemistry, Rice University, Houston, Texas 77005, USA.
Center for Theoretical Biological Physics, Rice University, Houston, Texas 77005, USA.
Phys Rev Lett. 2016 Jun 17;116(24):248101. doi: 10.1103/PhysRevLett.116.248101. Epub 2016 Jun 14.
We derive an unbiased information theoretic energy landscape for chromosomes at metaphase using a maximum entropy approach that accurately reproduces the details of the experimentally measured pairwise contact probabilities between genomic loci. Dynamical simulations using this landscape lead to cylindrical, helically twisted structures reflecting liquid crystalline order. These structures are similar to those arising from a generic ideal homogenized chromosome energy landscape. The helical twist can be either right or left handed so chiral symmetry is broken spontaneously. The ideal chromosome landscape when augmented by interactions like those leading to topologically associating domain formation in the interphase chromosome reproduces these behaviors. The phase diagram of this landscape shows that the helical fiber order and the cylindrical shape persist at temperatures above the onset of chiral symmetry breaking, which is limited by the topologically associating domain interaction strength.
我们使用最大熵方法推导了中期染色体的无偏信息论能量景观,该方法能准确再现基因组位点间实验测量的成对接触概率的细节。使用此能量景观进行的动力学模拟产生了反映液晶有序性的圆柱形螺旋扭曲结构。这些结构类似于由一般理想的均匀化染色体能量景观产生的结构。螺旋扭曲可以是右手或左手的,因此手性对称性自发破缺。当通过类似导致间期染色体中拓扑关联结构域形成的相互作用增强理想染色体景观时,会再现这些行为。该景观的相图表明,螺旋纤维有序性和圆柱形形状在手性对称性破缺开始温度以上仍然存在,这受拓扑关联结构域相互作用强度的限制。