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Triad3A regulates synaptic strength by ubiquitination of arc

机译:Triad3A通过弧的泛素化调节突触强度

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摘要

Activity-dependent gene transcription and protein synthesis underlie many forms of learning-related synaptic plasticity. At excitatory glutamatergic synapses, the immediate early gene product Arc/Arg3.1 couples synaptic activity to postsynaptic endocytosis of AMPA-type glutamate receptors. Although the mechanisms for Arc induction have been described, little is known regarding the molecular machinery that terminates Arc function. Here, we demonstrate that the RING domain ubiquitin ligase Triad3A/RNF216 ubiquitinates Arc, resulting in its rapid proteasomal degradation. Triad3A associates with Arc, localizes to clathrin-coated pits, and is associated with endocytic sites in dendrites and spines. In the absence of Triad3A, Arc accumulates, leading to the loss of surface AMPA receptors. Furthermore, loss of Triad3A mimics and occludes Arc-dependent forms of synaptic plasticity. Thus, degradation of Arc by clathrin-localized Triad3A regulates the availability of synaptic AMPA receptors and temporally tunes Arc-mediated plasticity at glutamatergic synapses.
机译:依赖于活性的基因转录和蛋白质合成是学习相关突触可塑性的多种形式的基础。在兴奋性谷氨酸能突触中,立即早期的基因产物Arc / Arg3.1将突触活性与AMPA型谷氨酸受体的突触后内吞结合。尽管已经描述了电弧诱导的机理,但是关于终止电弧功能的分子机制知之甚少。在这里,我们证明了RING域泛素连接酶Triad3A / RNF216泛素化Arc,导致其快速蛋白酶体降解。 Triad3A与Arc关联,定位到网格蛋白涂层的凹坑,并与树突和棘中的内吞位点相关。在没有Triad3A的情况下,电弧会累积,导致表面AMPA受体的丢失。此外,Triad3A的丢失模拟并封闭了弧依赖性形式的突触可塑性。因此,网格蛋白定位的Triad3A对Arc的降解可调节突触AMPA受体的可用性,并在谷氨酸能突触时暂时调节Arc介导的可塑性。

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