Laboratoire Physico-Chimie Curie, Institut Curie, PSL Research University, CNRS, Paris, France; Sorbonne Université, Paris, France.
Centre de Recherche Interdisciplinaire, Université de Paris, INSERM U1284, Paris, France.
J Biol Chem. 2020 Nov 6;295(45):15366-15375. doi: 10.1074/jbc.RA120.015009. Epub 2020 Aug 31.
Heterodimeric capping protein (CP) binds the rapidly growing barbed ends of actin filaments and prevents the addition (or loss) of subunits. Capping activity is generally considered to be essential for actin-based motility induced by Arp2/3 complex nucleation. By stopping barbed end growth, CP favors nucleation of daughter filaments at the functionalized surface where the Arp2/3 complex is activated, thus creating polarized network growth, which is necessary for movement. However, here using an assay where Arp2/3 complex-based actin polymerization is induced on bead surfaces in the absence of CP, we produce robust polarized actin growth and motility. This is achieved either by adding the actin polymerase Ena/VASP or by boosting Arp2/3 complex activity at the surface. Another actin polymerase, the formin FMNL2, cannot substitute for CP, showing that polymerase activity alone is not enough to override the need for CP. Interfering with the polymerase activity of Ena/VASP, its surface recruitment or its bundling activity all reduce Ena/VASP's ability to maintain polarized network growth in the absence of CP. Taken together, our findings show that CP is dispensable for polarized actin growth and motility in situations where surface-directed polymerization is favored by whatever means over the growth of barbed ends in the network.
异源二聚体加帽蛋白 (CP) 结合肌动蛋白丝快速生长的帽状末端,防止亚基的添加(或损失)。通常认为加帽活性对于由 Arp2/3 复合物引发的肌动蛋白基运动是必不可少的。通过停止帽状末端的生长,CP 有利于在 Arp2/3 复合物被激活的功能化表面上形成新的纤维,从而产生极化网络生长,这对于运动是必要的。然而,在这里我们使用一种实验方法,即在没有 CP 的情况下,在珠表面上诱导基于 Arp2/3 复合物的肌动蛋白聚合,我们产生了强大的极化肌动蛋白生长和运动。这可以通过添加肌动蛋白聚合酶 Ena/VASP 或在表面上增强 Arp2/3 复合物的活性来实现。另一种肌动蛋白聚合酶,formin FMNL2,不能替代 CP,表明聚合酶活性本身不足以取代 CP 的需求。干扰 Ena/VASP 的聚合酶活性、表面募集或其成束活性都会降低 Ena/VASP 在没有 CP 的情况下维持极化网络生长的能力。总之,我们的发现表明,在表面定向聚合通过任何手段有利于网络中帽状末端的生长的情况下,CP 对于极化肌动蛋白生长和运动是可有可无的。