神经周围网
中间神经元
神经科学
帕尔瓦布明
门控
生物
突触可塑性
受体
抑制性突触后电位
遗传学
作者
Emilia Favuzzi,André Marques–Smith,Rubén Deogracias,Christian M. Winterflood,Alberto Sánchez-Aguilera,Laura Mantoan Ritter,Patricia Maeso,Cathy Fernandes,Helge Ewers,Beatriz Rico
出处
期刊:Neuron
[Elsevier]
日期:2017-07-14
卷期号:95 (3): 639-655.e10
被引量:312
标识
DOI:10.1016/j.neuron.2017.06.028
摘要
Summary
Activity-dependent neuronal plasticity is a fundamental mechanism through which the nervous system adapts to sensory experience. Several lines of evidence suggest that parvalbumin (PV+) interneurons are essential in this process, but the molecular mechanisms underlying the influence of experience on interneuron plasticity remain poorly understood. Perineuronal nets (PNNs) enwrapping PV+ cells are long-standing candidates for playing such a role, yet their precise contribution has remained elusive. We show that the PNN protein Brevican is a critical regulator of interneuron plasticity. We find that Brevican simultaneously controls cellular and synaptic forms of plasticity in PV+ cells by regulating the localization of potassium channels and AMPA receptors, respectively. By modulating Brevican levels, experience introduces precise molecular and cellular modifications in PV+ cells that are required for learning and memory. These findings uncover a molecular program through which a PNN protein facilitates appropriate behavioral responses to experience by dynamically gating PV+ interneuron function.
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