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Single-molecule imaging of a three-component ordered actin disassembly mechanism

机译:三组分有序肌动蛋白拆卸机制的单分子成像

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The mechanisms by which cells destabilize and rapidly disassemble filamentous actin networks have remained elusive; however, Coronin, Cofilin and AIP1 have been implicated in this process. Here using multi-wavelength single-molecule fluorescence imaging, we show that mammalian Cor1B, Cof1 and AIP1 work in concert through a temporally ordered pathway to induce highly efficient severing and disassembly of actin filaments. Cor1B binds to filaments first, and dramatically accelerates the subsequent binding of Cof1, leading to heavily decorated, stabilized filaments. Cof1 in turn recruits AIP1, which rapidly triggers severing and remains bound to the newly generated barbed ends. New growth at barbed ends generated by severing was blocked specifically in the presence of all three proteins. This activity enabled us to reconstitute and directly visualize single actin filaments being rapidly polymerized by formins at their barbed ends while simultanteously being stochastically severed and capped along their lengths, and disassembled from their pointed ends.
机译:细胞不稳定并迅速分解丝状肌动蛋白网络的机制仍然难以捉摸。但是,Coronin,Cofilin和AIP1与该过程有关。在这里使用多波长单分子荧光成像,我们显示哺乳动物Cor1B,Cof1和AIP1通过时间有序的途径协同工作,以诱导肌动蛋白丝的高效切断和拆卸。 Cor1B首先与细丝结合,并显着加速随后的Cof1结合,从而导致装饰丰富且稳定的细丝。 Cof1反过来募集AIP1,该AIP1迅速触发切断,并保持绑定到新生成的带刺的末端。在所有这三种蛋白质的存在下,通过切断产生的刺状末端的新生长被特别地阻断。这项活动使我们能够重构并直接看到单个肌动蛋白丝,这些蛋白丝在其带刺的末端被福明斯迅速聚合,同时被随机切断并沿其长度封端,并从其尖端分解。

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