Department of Agricultural Biotechnology, Center for Food and Bioconvergence, and Research Institute for Agriculture and Life Sciences, CALS, Seoul National University, Seoul 08826, Korea.
Present address: Center for Biomolecular and Cellular Structure, Institute for Basic Science (IBS), Daejeon 34126, Korea.
Mol Cells. 2023 May 31;46(5):309-318. doi: 10.14348/molcells.2023.2144. Epub 2023 May 3.
The nucleoskeletal protein lamin is primarily responsible for the mechanical stability of the nucleus. The lamin assembly process requires the A11, A22, and ACN binding modes of the coiled-coil dimers. Although X-ray crystallography and chemical cross-linking analysis of lamin A/C have provided snapshots of A11 and ACN binding modes, the assembly mechanism of the entire filament remains to be explained. Here, we report a crystal structure of a coil 2 fragment, revealing the A22 interaction at the atomic resolution. The structure showed detailed structural features, indicating that two coiled-coil dimers of the coil 2 subdomain are separated and then re-organized into the antiparallel-four-helix bundle. Furthermore, our findings suggest that the ACN binding mode between coil 1a and the C-terminal part of coil 2 when the A11 tetramers are arranged by the A22 interactions. We propose a full assembly model of lamin A/C with the curvature around the linkers, reconciling the discrepancy between the and observations. Our model accounts for the balanced elasticity and stiffness of the nuclear envelopes, which is essential in protecting the cellular nucleus from external pressure.
核骨架蛋白 lamin 主要负责细胞核的机械稳定性。lamin 的组装过程需要卷曲螺旋二聚体的 A11、A22 和 ACN 结合模式。尽管 lamin A/C 的 X 射线晶体学和化学交联分析提供了 A11 和 ACN 结合模式的快照,但整个细丝的组装机制仍有待解释。在这里,我们报告了一个 coil 2 片段的晶体结构,揭示了原子分辨率下的 A22 相互作用。该结构显示了详细的结构特征,表明 coil 2 亚基的两个卷曲螺旋二聚体被分离,然后重新组织成反平行四螺旋束。此外,我们的发现表明,当 A11 四聚体通过 A22 相互作用排列时, coil 1a 和 coil 2 的 C 末端之间的 ACN 结合模式。我们提出了 lamin A/C 的完整组装模型,其中包括连接子的曲率,调和了 和 观察结果之间的差异。我们的模型解释了核膜的弹性和刚性之间的平衡,这对于保护细胞核免受外部压力至关重要。