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Dendritic spine geometry can localize GTPase signaling in neurons

机译:树突棘的几何形状可以在神经元中定位GTPase信号传导

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Dendritic spines are the postsynaptic terminals of most excitatory synapses in the mammalian brain. Learning and memory are associated with long-lasting structural remodeling of dendritic spines through an actin-mediated process regulated by the Rho-family GTPases RhoA, Rac, and Cdc42. These GTPases undergo sustained activation after synaptic stimulation, but whereas Rho activity can spread from the stimulated spine, Cdc42 activity remains localized to the stimulated spine. Because Cdc42 itself diffuses rapidly in and out of the spine, the basis for the retention of Cdc42 activity in the stimulated spine long after synaptic stimulation has ceased is unclear. Here we model the spread of Cdc42 activation at dendritic spines by means of reaction-diffusion equations solved on spine-like geometries. Excitable behavior arising from positive feedback in Cdc42 activation leads to spreading waves of Cdc42 activity. However, because of the very narrow neck of the dendritic spine, wave propagation is halted through a phenomenon we term geometrical wave-pinning. We show that this can account for the localization of Cdc42 activity in the stimulated spine, and, of interest, retention is enhanced by high diffusivity of Cdc42. Our findings are broadly applicable to other instances of signaling in extreme geometries, including filopodia and primary cilia.
机译:树突棘是哺乳动物脑中大多数兴奋性突触的突触后末端。学习和记忆与通过Rho家族GTPases RhoA,Rac和Cdc42调控的肌动蛋白介导的过程与树突棘的持久结构重塑有关。这些GTP酶在突触刺激后经历持续的活化,但是Rho活性可以从受刺激的脊柱扩散,而Cdc42活性仍然局限于受刺激的脊柱。由于Cdc42本身迅速扩散到脊椎内外,因此,在突触刺激停止后很长一段时间内,Cdc42活性保留​​在受激脊椎中的基础尚不清楚。在这里,我们通过在脊柱状几何形状上求解的反应扩散方程对Cdc42活化在树突棘上的扩散进行建模。 Cdc42激活中的正反馈引起的兴奋行为导致Cdc42活性扩散波。但是,由于树突棘的颈部非常狭窄,因此通过我们称之为几何波钉扎的现象阻止了波传播。我们表明,这可以解释Cdc42活性在受激脊柱中的定位,并且感兴趣的是,Cdc42的高扩散性可提高保留率。我们的发现可广泛应用于极端几何中的其他信号传导实例,包括丝状伪足和原发纤毛。

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