Department of Molecular Cellular and Developmental Biology, Yale University, New Haven, CT 06520, USA.
J Cell Biol. 2011 Oct 31;195(3):485-98. doi: 10.1083/jcb.201103067. Epub 2011 Oct 24.
We created two new mutants of fission yeast cofilin to investigate why cytokinesis in many organisms depends on this small actin-binding protein. These mutant cofilins bound actin monomers normally, but bound and severed ADP-actin filaments much slower than wild-type cofilin. Cells depending on mutant cofilins condensed nodes, precursors of the contractile ring, into clumps rather than rings. Starting from clumped nodes, mutant cells slowly assembled rings from diverse intermediate structures including spiral strands containing actin filaments and other contractile ring proteins. This process in mutant cells depended on α-actinin. These slowly assembled contractile rings constricted at a normal rate but with more variability, indicating ring constriction is not very sensitive to defects in severing by cofilin. Computer simulations of the search-capture-pull and release model of contractile ring formation predicted that nodes clump when the release step is slow, so cofilin severing of actin filament connections between nodes likely contributes to the release step.
我们构建了两个裂殖酵母丝氨酸肌动蛋白结合蛋白(cofilin)的新突变体,以研究为什么有丝分裂在许多生物体中依赖于这种小的肌动蛋白结合蛋白。这两种突变体 cofilin 与肌动蛋白单体正常结合,但与 ADP-肌动蛋白纤维的结合和切割速度比野生型 cofilin 慢得多。依赖突变体 cofilin 的细胞将节点(收缩环的前体)凝聚成团而不是环。从凝聚的节点开始,突变细胞从各种中间结构缓慢组装环,包括含有肌动蛋白丝和其他收缩环蛋白的螺旋链。在突变细胞中,这个过程依赖于肌联蛋白。这些缓慢组装的收缩环以正常的速度收缩,但变化更大,表明收缩环的收缩对 cofilin 切割的缺陷并不十分敏感。收缩环形成的搜索-捕获-拉拽和释放模型的计算机模拟预测,当释放步骤缓慢时,节点会凝聚,因此,cofilin 对节点之间的肌动蛋白丝连接的切割可能有助于释放步骤。