Orlando Lianna R, Ayala Ramses, Kett Lauren R, Curley Allison A, Duffner Jay, Bragg D Cristopher, Tsai Li-Huei, Dunah Anthone W, Young Anne B
Department of Neurology, MassGeneral Institute for Neurodegenerative Disease, Massachusetts General Hospital, Boston, 02129, USA.
J Neurochem. 2009 Jul;110(2):557-69. doi: 10.1111/j.1471-4159.2009.06139.x. Epub 2009 Apr 30.
Phosphorylation of neurotransmitter receptors can modify their activity and regulate neuronal excitability. Cyclin-dependent kinase 5 (cdk5) is a proline-directed serine/threonine kinase involved not only in neuronal development, but also in synaptic function and plasticity. Here we demonstrate that group I metabotropic glutamate receptors (mGluRs), which modulate post-synaptic signaling by coupling to intracellular signal transduction pathways, are phosphorylated by cdk5. In vitro kinase assays reveal that cdk5 phosphorylates mGluR5 within the domain of the receptor that interacts with the scaffolding protein homer. Using a novel phosphospecific mGluR antibody, we show that the homer-binding domain of both mGluR1 and mGluR5 are phosphorylated in vivo, and that inhibition of cdk5 with siRNA decreases the amount of phosphorylated receptor. Furthermore, kinetic binding analysis, by surface plasmon resonance, indicates that phosphorylation of mGluR5 enhances its association with homer. Homer protein complexes in the post-synaptic density, and their disruption by an activity-dependent short homer 1a isoform, have been shown to regulate the trafficking and signaling of the mGluRs and impact many neuroadaptive processes. Phosphorylation of the mGluR homer-binding domain, in contrast to homer 1a induction, provides a novel mechanism for potentially regulating a subset of homer interactions.
神经递质受体的磷酸化可改变其活性并调节神经元兴奋性。细胞周期蛋白依赖性激酶5(cdk5)是一种脯氨酸定向的丝氨酸/苏氨酸激酶,不仅参与神经元发育,还参与突触功能和可塑性。在此,我们证明了I组代谢型谷氨酸受体(mGluRs),其通过与细胞内信号转导途径偶联来调节突触后信号传导,可被cdk5磷酸化。体外激酶分析表明,cdk5在受体与支架蛋白荷马相互作用的结构域内使mGluR5磷酸化。使用一种新型的磷酸特异性mGluR抗体,我们表明mGluR1和mGluR5的荷马结合结构域在体内均被磷酸化,并且用小干扰RNA抑制cdk5可降低磷酸化受体的量。此外,通过表面等离子体共振进行的动力学结合分析表明,mGluR5的磷酸化增强了其与荷马的结合。突触后致密物中的荷马蛋白复合物及其被活性依赖性短荷马1a异构体破坏,已被证明可调节mGluRs的运输和信号传导,并影响许多神经适应性过程。与荷马1a诱导相反,mGluR荷马结合结构域的磷酸化提供了一种潜在调节一部分荷马相互作用的新机制。