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Formin 2 regulates the stabilization of filopodial tip adhesions in growth cones and affects neuronal outgrowth and pathfinding in vivo

机译:形式2调节生长锥中丝状尾部粘连的稳定性,并影响体内神经元的长出和寻路

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Growth cone filopodia are actin-based mechanosensory structures that are essential for chemoreception and the generation of contractile forces necessary for directional motility. However, little is known about the influence of filopodial actin structures on substrate adhesion and filopodial contractility. Formin 2 (Fmn2) localizes along filopodial actin bundles and its depletion does not affect filopodia initiation or elongation. However, Fmn2 activity is required for filopodial tip adhesion maturation and the ability of filopodia to generate traction forces. Dysregulation of filopodia in Fmn2-depleted neurons leads to compromised growth cone motility. Additionally, in mouse fibroblasts, Fmn2 regulates ventral stress fiber assembly and affects the stability of focal adhesions. In the developing chick spinal cord, Fmn2 activity is required cellautonomously for the outgrowth and pathfinding of spinal commissural neurons. Our results reveal an unanticipated function for Fmn2 in neural development. Fmn2 regulates structurally diverse bundled actin structures, parallel filopodial bundles in growth cones and anti-parallel stress fibers in fibroblasts, in turn modulating the stability of substrate adhesions. We propose Fmn2 as a mediator of actin bundle integrity, enabling efficient force transmission to the adhesion sites.
机译:生长锥丝状伪足是基于肌动蛋白的机械感觉结构,对于化学感受以及产生方向运动所需的收缩力至关重要。然而,关于丝状肌动蛋白结构对底物粘附和丝状二向收缩性的影响知之甚少。形式2(Fmn2)沿丝状肌动蛋白束定位,其消耗不会影响丝状伪足的开始或伸长。但是,Fmn2活性是丝状尾端附着力成熟和丝状伪足产生牵引力的能力所必需的。 Fmn2耗尽的神经元的丝状伪足失调会导致生长锥运动性受损。此外,在小鼠成纤维细胞中,Fmn2调节腹侧应力纤维的组装并影响粘着斑的稳定性。在发育中的雏鸡脊髓中,Fmn2活性是脊椎连合神经元的生长和寻路的自主细胞。我们的结果揭示了Fmn2在神经发育中具有意想不到的功能。 Fmn2调节结构上不同的束缚肌动蛋白结构,生长锥中的平行丝成束和成纤维细胞中的抗平行应力纤维,进而调节基质粘附的稳定性。我们建议Fmn2作为肌动蛋白束完整性的介质,使有效的力传递到粘附部位。

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