Department of Biomedicine and KG Jebsen Center for Neuropsychiatric Disorders, University of Bergen, Jonas Lies vei 91, N-5009, Bergen, Norway.
Department of Biomedicine and KG Jebsen Center for Neuropsychiatric Disorders, University of Bergen, Jonas Lies vei 91, N-5009, Bergen, Norway.
Semin Cell Dev Biol. 2018 May;77:33-42. doi: 10.1016/j.semcdb.2017.09.006. Epub 2017 Sep 7.
Mammalian excitatory synapses express diverse types of synaptic plasticity. A major challenge in neuroscience is to understand how a neuron utilizes different types of plasticity to sculpt brain development, function, and behavior. Neuronal activity-induced expression of the immediate early protein, Arc, is critical for long-term potentiation and depression of synaptic transmission, homeostatic synaptic scaling, and adaptive functions such as long-term memory formation. However, the molecular basis of Arc protein function as a regulator of synaptic plasticity and cognition remains a puzzle. Recent work on the biophysical and structural properties of Arc, its protein-protein interactions and post-translational modifications have shed light on the issue. Here, we present Arc protein as a flexible, multifunctional and interactive hub. Arc interacts with specific effector proteins in neuronal compartments (dendritic spines, nuclear domains) to bidirectionally regulate synaptic strength by distinct molecular mechanisms. Arc stability, subcellular localization, and interactions are dictated by synaptic activity and post-translational modification of Arc. This functional versatility and context-dependent signaling supports a view of Arc as a highly specialized master organizer of long-term synaptic plasticity, critical for information storage and cognition.
哺乳动物的兴奋性突触表达多种类型的突触可塑性。神经科学的主要挑战是理解神经元如何利用不同类型的可塑性来塑造大脑发育、功能和行为。神经元活动诱导的即时早期蛋白 Arc 的表达对于突触传递的长时程增强和抑制、突触的平衡调节以及长时记忆形成等适应性功能至关重要。然而,Arc 蛋白作为突触可塑性和认知调节因子的功能的分子基础仍然是一个谜。最近关于 Arc 的生物物理和结构特性、其蛋白-蛋白相互作用和翻译后修饰的研究揭示了这个问题。在这里,我们将 Arc 蛋白呈现为一个灵活的、多功能的和交互的中心。Arc 在神经元区室(树突棘、核域)中与特定的效应蛋白相互作用,通过不同的分子机制双向调节突触强度。Arc 的稳定性、亚细胞定位和相互作用由突触活动和 Arc 的翻译后修饰决定。这种功能多样性和依赖于上下文的信号支持了 Arc 作为长时程突触可塑性的高度专业化的主要组织者的观点,对于信息存储和认知至关重要。