Seixas Ana I, Morais Miguel R G, Brakebusch Cord, Relvas João B
i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Portugal; IBMC - Instituto de Biologia Molecular e Celular, Universidade do Porto, Porto, Portugal.
i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Portugal; IBMC - Instituto de Biologia Molecular e Celular, Universidade do Porto, Porto, Portugal.
Prog Neurobiol. 2023 Aug;227:102481. doi: 10.1016/j.pneurobio.2023.102481. Epub 2023 Jun 13.
Myelin improves axonal conduction velocity and is essential for nerve development and regeneration. In peripheral nerves, Schwann cells depend on bidirectional mechanical and biochemical signaling to form the myelin sheath but the mechanism underlying this process is not understood. Rho GTPases are integrators of "outside-in" signaling that link cytoskeletal dynamics with cellular architecture to regulate morphology and adhesion. Using Schwann cell-specific gene inactivation in the mouse, we discovered that RhoA promotes the initiation of myelination, and is required to both drive and terminate myelin growth at different stages of peripheral myelination, suggesting developmentally-specific modes of action. In Schwann cells, RhoA targets actin filament turnover, via Cofilin 1, actomyosin contractility and cortical actin-membrane attachments. This mechanism couples actin cortex mechanics with the molecular organization of the cell boundary to target specific signaling networks that regulate axon-Schwann cell interaction/adhesion and myelin growth. This work shows that RhoA is a key component of a biomechanical response required to control Schwann cell state transitions for proper myelination of peripheral nerves.
髓磷脂可提高轴突传导速度,对神经发育和再生至关重要。在周围神经中,施万细胞依靠双向机械和生化信号形成髓鞘,但这一过程的潜在机制尚不清楚。Rho GTP酶是“由外向内”信号的整合者,将细胞骨架动力学与细胞结构联系起来,以调节形态和黏附。通过在小鼠中使用施万细胞特异性基因失活,我们发现RhoA促进髓鞘形成的起始,并且在周围髓鞘形成的不同阶段驱动和终止髓鞘生长均需要RhoA,这表明其具有发育特异性的作用模式。在施万细胞中,RhoA通过丝切蛋白1、肌动球蛋白收缩性和皮质肌动蛋白-膜附着来靶向肌动蛋白丝周转。这种机制将肌动蛋白皮质力学与细胞边界的分子组织联系起来,以靶向调节轴突-施万细胞相互作用/黏附和髓鞘生长的特定信号网络。这项工作表明,RhoA是控制施万细胞状态转变以实现周围神经正常髓鞘形成所需的生物力学反应的关键组成部分。