Department of Neuroscience, Section of Physiology, University of Torino, Torino, Italy.
J Cell Sci. 2010 Mar 15;123(Pt 6):881-93. doi: 10.1242/jcs.056846. Epub 2010 Feb 16.
MAPK/Erk is a protein kinase activated by neurotrophic factors involved in synapse formation and plasticity, which acts at both the nuclear and cytoplasmic level. Synapsin proteins are synaptic-vesicle-associated proteins that are well known to be MAPK/Erk substrates at phylogenetically conserved sites. However, the physiological role of MAPK/Erk-dependent synapsin phosphorylation in regulating synaptic formation and function is poorly understood. Here, we examined whether synapsin acts as a physiological effector of MAPK/Erk in synaptogenesis and plasticity. To this aim, we developed an in vitro model of soma-to-soma paired Helix B2 neurons, that establish bidirectional excitatory synapses. We found that the formation and activity-dependent short-term plasticity of these synapses is dependent on the MAPK/Erk pathway. To address the role of synapsin in this pathway, we generated non-phosphorylatable and pseudo-phosphorylated Helix synapsin mutants at the MAPK/Erk sites. Overexpression experiments revealed that both mutants interfere with presynaptic differentiation, synapsin clustering, and severely impair post-tetanic potentiation, a form of short-term homosynaptic plasticity. Our findings show that MAPK/Erk-dependent synapsin phosphorylation has a dual role both in the establishment of functional synaptic connections and their short-term plasticity, indicating that some of the multiple extranuclear functions of MAPK/Erk in neurons can be mediated by the same multifunctional presynaptic target.
MAPK/Erk 是一种由神经营养因子激活的蛋白激酶,参与突触形成和可塑性,在核内和细胞质水平发挥作用。突触素蛋白是突触小泡相关蛋白,已知在进化上保守的位点是 MAPK/Erk 的底物。然而,MAPK/Erk 依赖性突触素磷酸化在调节突触形成和功能中的生理作用知之甚少。在这里,我们研究了突触素是否作为 MAPK/Erk 在突触发生和可塑性中的生理效应物发挥作用。为此,我们开发了一种体外体对体配对 Helix B2 神经元模型,该模型建立了双向兴奋性突触。我们发现,这些突触的形成和活性依赖性短期可塑性依赖于 MAPK/Erk 途径。为了研究突触素在该途径中的作用,我们在 MAPK/Erk 位点生成了非磷酸化和假磷酸化的 Helix 突触素突变体。过表达实验表明,这两种突变体都干扰了突触前分化、突触素聚集,并严重损害了强直后增强,这是一种短期的同源突触可塑性。我们的研究结果表明,MAPK/Erk 依赖性突触素磷酸化在功能性突触连接的建立及其短期可塑性中具有双重作用,表明 MAPK/Erk 在神经元中的一些核外的多种功能可以通过相同的多功能突触前靶标来介导。