Department of Biomedical Engineering, University of Texas at Austin, Austin, TX 78712.
Department of Mechanical and Aerospace Engineering, University of California San Diego, La Jolla, CA 92093.
Proc Natl Acad Sci U S A. 2024 Jan 16;121(3):e2309152121. doi: 10.1073/pnas.2309152121. Epub 2024 Jan 11.
Cellular remodeling of actin networks underlies cell motility during key morphological events, from embryogenesis to metastasis. In these transformations, there is an inherent competition between actin branching and bundling, because steric clashes among branches create a mechanical barrier to bundling. Recently, liquid-like condensates consisting purely of proteins involved in either branching or bundling of the cytoskeleton have been found to catalyze their respective functions. Yet in the cell, proteins that drive branching and bundling are present simultaneously. In this complex environment, which factors determine whether a condensate drives filaments to branch or become bundled? To answer this question, we added the branched actin nucleator, Arp2/3, to condensates composed of VASP, an actin bundling protein. At low actin to VASP ratios, branching activity, mediated by Arp2/3, robustly inhibited VASP-mediated bundling of filaments, in agreement with agent-based simulations. In contrast, as the actin to VASP ratio increased, addition of Arp2/3 led to formation of aster-shaped structures, in which bundled filaments emerged from a branched actin core, analogous to filopodia emerging from a branched lamellipodial network. These results demonstrate that multi-component, liquid-like condensates can modulate the inherent competition between bundled and branched actin morphologies, leading to organized, higher-order structures, similar to those found in motile cells.
细胞骨架中肌动蛋白网络的重塑是细胞在胚胎发生到转移等关键形态事件中运动的基础。在这些转变中,肌动蛋白分支和束集之间存在内在竞争,因为分支之间的空间冲突会对束集形成机械障碍。最近,人们发现仅由参与细胞骨架分支或束集的蛋白质组成的液态凝聚物可以催化它们各自的功能。然而,在细胞中,驱动分支和束集的蛋白质同时存在。在这种复杂的环境中,哪些因素决定了凝聚物是驱动纤维分支还是束集?为了回答这个问题,我们将分支肌动蛋白引发因子 Arp2/3 添加到由肌球蛋白结合蛋白 VASP 组成的凝聚物中。在低肌动蛋白与 VASP 的比例下,Arp2/3 介导的分支活性强烈抑制了 VASP 介导的纤维束集,这与基于代理的模拟结果一致。相比之下,随着肌动蛋白与 VASP 的比例增加,添加 Arp2/3 会导致星状结构的形成,其中束集的纤维从分支的肌动蛋白核心中出现,类似于从分支的片状伪足网络中出现的丝状伪足。这些结果表明,多组分的液态凝聚物可以调节束集和分支肌动蛋白形态之间固有的竞争,导致有序的高级结构,类似于在运动细胞中发现的结构。