Department of Biology, University of Maryland, College Park, Maryland, United States of America.
PLoS One. 2011 Mar 31;6(3):e18264. doi: 10.1371/journal.pone.0018264.
Sensory experience, and the lack thereof, can alter the function of excitatory synapses in the primary sensory cortices. Recent evidence suggests that changes in sensory experience can regulate the synaptic level of Ca(2+)-permeable AMPA receptors (CP-AMPARs). However, the molecular mechanisms underlying such a process have not been determined. We found that binocular visual deprivation, which is a well-established in vivo model to produce multiplicative synaptic scaling in visual cortex of juvenile rodents, is accompanied by an increase in the phosphorylation of AMPAR GluR1 (or GluA1) subunit at the serine 845 (S845) site and the appearance of CP-AMPARs at synapses. To address the role of GluR1-S845 in visual deprivation-induced homeostatic synaptic plasticity, we used mice lacking key phosphorylation sites on the GluR1 subunit. We found that mice specifically lacking the GluR1-S845 site (GluR1-S845A mutants), which is a substrate of cAMP-dependent kinase (PKA), show abnormal basal excitatory synaptic transmission and lack visual deprivation-induced homeostatic synaptic plasticity. We also found evidence that increasing GluR1-S845 phosphorylation alone is not sufficient to produce normal multiplicative synaptic scaling. Our study provides concrete evidence that a GluR1 dependent mechanism, especially S845 phosphorylation, is a necessary pre-requisite step for in vivo homeostatic synaptic plasticity.
感觉体验的有无会改变初级感觉皮层中兴奋性突触的功能。最近的证据表明,感觉体验的变化可以调节突触水平的 Ca(2+)-通透性 AMPA 受体 (CP-AMPARs)。然而,这种过程的分子机制尚未确定。我们发现,双眼视觉剥夺是一种成熟的体内模型,可以在幼年啮齿动物的视觉皮层中产生乘法性突触缩放,同时伴随着 AMPAR GluR1(或 GluA1)亚基丝氨酸 845(S845)位点的磷酸化增加和 CP-AMPARs 在突触处的出现。为了研究 GluR1-S845 在视觉剥夺诱导的同型突触可塑性中的作用,我们使用了缺乏 GluR1 亚基关键磷酸化位点的小鼠。我们发现,特异性缺乏 GluR1-S845 位点(GluR1-S845A 突变体)的小鼠,该位点是 cAMP 依赖性激酶 (PKA) 的底物,表现出异常的基础兴奋性突触传递,并且缺乏视觉剥夺诱导的同型突触可塑性。我们还发现证据表明,单独增加 GluR1-S845 磷酸化不足以产生正常的乘法性突触缩放。我们的研究提供了具体证据,表明 GluR1 依赖性机制,特别是 S845 磷酸化,是体内同型突触可塑性的必要前提步骤。
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