Micron School of Materials Science and Engineering, Boise State University, Boise, ID 83725-2090.
Division of Biological Sciences, University of California San Diego, La Jolla, CA 92093.
Proc Natl Acad Sci U S A. 2024 Oct 22;121(43):e2410584121. doi: 10.1073/pnas.2410584121. Epub 2024 Oct 14.
Recent studies showed an interphase chromosome architecture-a specific coiled nucleosome structure-derived from cryopreserved EM tomograms, and dispersed throughout the nucleus. The images were computationally processed to fill in the missing wedges of data caused by incomplete tomographic tilts. The resulting structures increased z-resolution enabling an extension of the proposed architecture to that of mitotic chromosomes. Here, we provide additional insights into the chromosome architecture that was recently published [M. Elbaum et al., , e2119101119 (2022)]. We build on the defined chromosomes time-dependent structures in an effort to probe their dynamics. Variants of the coiled chromosome structures, possibly further defining specific regions, are discussed. We propose, based on generalized specific uncoiling of mitotic chromosomes in telophase, large-scale reorganization of interphase chromosomes. Chromosome territories, organized as micron-sized small patches, are constructed, satisfying complex volume considerations. Finally, we unveiled the structures of replicated coiled chromosomes, still attached to centromeres, as part of chromosome architecture.
最近的研究表明,间期染色体结构——一种源自冷冻电镜断层扫描的特定螺旋核小体结构——分散在整个核内。这些图像经过计算处理,以填补由于不完全断层倾斜而导致的数据缺失楔形。得到的结构增加了 z 分辨率,从而将所提出的结构扩展到有丝分裂染色体。在这里,我们提供了对最近发表的染色体结构的更多见解[M. Elbaum 等人,,e2119101119(2022)]。我们基于定义的染色体随时间变化的结构,努力探测它们的动力学。讨论了可能进一步定义特定区域的螺旋染色体结构的变体。我们基于有丝分裂末期染色体的广义特异性解旋提出,间期染色体的大规模重组。构建了组织为微米大小的小块的染色体区室,满足复杂的体积考虑。最后,我们揭示了仍附着在着丝粒上的复制螺旋染色体的结构,作为染色体结构的一部分。