Ngo Kien Xuan, Kodera Noriyuki, Katayama Eisaku, Ando Toshio, Uyeda Taro Q P
Biomedical Research Institute, National Institute of Advanced Industrial Science and Technology, Tsukuba, Japan.
Department of Physics and Bio-AFM Frontier Research Center, Kanazawa University, Kanazawa, Japan.
Elife. 2015 Feb 2;4:e04806. doi: 10.7554/eLife.04806.
High-speed atomic force microscopy was employed to observe structural changes in actin filaments induced by cofilin binding. Consistent with previous electron and fluorescence microscopic studies, cofilin formed clusters along actin filaments, where the filaments were 2-nm thicker and the helical pitch was ~25% shorter, compared to control filaments. Interestingly, the shortened helical pitch was propagated to the neighboring bare zone on the pointed-end side of the cluster, while the pitch on the barbed-end side was similar to the control. Thus, cofilin clusters induce distinctively asymmetric conformational changes in filaments. Consistent with the idea that cofilin favors actin structures with a shorter helical pitch, cofilin clusters grew unidirectionally toward the pointed-end of the filament. Severing was often observed near the boundaries between bare zones and clusters, but not necessarily at the boundaries.
利用高速原子力显微镜观察了肌动蛋白丝因丝切蛋白结合而引起的结构变化。与之前的电子显微镜和荧光显微镜研究一致,丝切蛋白沿着肌动蛋白丝形成簇,与对照丝相比,这些丝更粗2纳米,螺旋间距缩短约25%。有趣的是,缩短的螺旋间距传播到簇尖端部一侧的相邻裸区,而刺端部一侧的间距与对照相似。因此,丝切蛋白簇在丝中诱导出明显不对称的构象变化。与丝切蛋白倾向于具有较短螺旋间距的肌动蛋白结构这一观点一致,丝切蛋白簇朝着丝的尖端部单向生长。在裸区和簇之间的边界附近经常观察到切断现象,但不一定在边界处。