School of Life Sciences, University of Warwick, Coventry, CV4 7AL, UK.
Warwick Medical School, University of Warwick, Coventry, CV4 7AL, UK.
Neuron. 2018 Jun 27;98(6):1124-1132.e7. doi: 10.1016/j.neuron.2018.05.012. Epub 2018 May 31.
Neuronal activity regulates the transcription and translation of the immediate-early gene Arc/Arg3.1, a key mediator of synaptic plasticity. Proteasome-dependent degradation of Arc tightly limits its temporal expression, yet the significance of this regulation remains unknown. We disrupted the temporal control of Arc degradation by creating an Arc knockin mouse (ArcKR) where the predominant Arc ubiquitination sites were mutated. ArcKR mice had intact spatial learning but showed specific deficits in selecting an optimal strategy during reversal learning. This cognitive inflexibility was coupled to changes in Arc mRNA and protein expression resulting in a reduced threshold to induce mGluR-LTD and enhanced mGluR-LTD amplitude. These findings show that the abnormal persistence of Arc protein limits the dynamic range of Arc signaling pathways specifically during reversal learning. Our work illuminates how the precise temporal control of activity-dependent molecules, such as Arc, regulates synaptic plasticity and is crucial for cognition.
神经元活动调节即时早期基因 Arc/Arg3.1 的转录和翻译,Arc/Arg3.1 是突触可塑性的关键介质。蛋白酶体依赖性的 Arc 降解限制了其时间表达,但这种调节的意义尚不清楚。我们通过创建一个主要 Arc 泛素化位点发生突变的 Arc 敲入小鼠 (ArcKR) 来破坏 Arc 降解的时间控制。ArcKR 小鼠具有完整的空间学习能力,但在反转学习中表现出选择最佳策略的特定缺陷。这种认知灵活性与 Arc mRNA 和蛋白表达的变化有关,导致诱导 mGluR-LTD 的阈值降低,mGluR-LTD 幅度增强。这些发现表明,Arc 蛋白的异常持续存在限制了 Arc 信号通路的动态范围,特别是在反转学习期间。我们的工作阐明了如何通过精确的时间控制活动依赖性分子(如 Arc)来调节突触可塑性,这对于认知至关重要。