Institute for Theoretical Physics, University of Heidelberg, Heidelberg, Germany.
PLoS One. 2012;7(5):e36282. doi: 10.1371/journal.pone.0036282. Epub 2012 May 4.
We employ 4Pi-microscopy to study SC organization in mouse spermatocyte nuclei allowing for the three-dimensional reconstruction of the SC's backbone arrangement. Additionally, we model the SCs in the cell nucleus by confined, self-avoiding polymers, whose chain ends are attached to the envelope of the confining cavity and diffuse along it. This work helps to elucidate the role of entropy in shaping pachytene SC organization. The framework provided by the complex interplay between SC polymer rigidity, tethering and confinement is able to qualitatively explain features of SC organization, such as mean squared end-to-end distances, mean squared center-of-mass distances, or SC density distributions. However, it fails in correctly assessing SC entanglement within the nucleus. In fact, our analysis of the 4Pi-microscopy images reveals a higher ordering of SCs within the nuclear volume than what is expected by our numerical model. This suggests that while effects of entropy impact SC organization, the dedicated action of proteins or actin cables is required to fine-tune the spatial ordering of SCs within the cell nucleus.
我们采用 4Pi 显微镜研究了小鼠精母细胞细胞核中的 SC 组织,实现了 SC 骨架排列的三维重建。此外,我们通过受限的自回避聚合物对 SC 进行建模,聚合物链的末端附着在限制腔的包络上,并沿其扩散。这项工作有助于阐明熵在塑造粗线期 SC 组织中的作用。SC 聚合物刚性、束缚和限制之间的复杂相互作用提供的框架能够定性地解释 SC 组织的特征,例如均方末端到末端距离、均方质心距离或 SC 密度分布。然而,它无法正确评估核内 SC 的缠结。事实上,我们对 4Pi 显微镜图像的分析表明,SC 在核内的有序性高于我们数值模型所预期的水平。这表明,尽管熵的影响会影响 SC 的组织,但需要蛋白质或肌动蛋白电缆的专门作用来精细调整 SC 在细胞核内的空间排列。