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Parvalbumin tunes spike-timing and efferent short-term plasticity in striatal fast spiking interneurons

机译:小白蛋白调节纹状体快速增高中间神经元的峰值定时和传出的短期可塑性

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摘要

Striatal fast spiking interneurons (FSIs) modulate output of the striatum by synchronizing medium-sized spiny neurons (MSNs). Recent studies have broadened our understanding of FSIs, showing that they are implicated in severe motor disorders such as parkinsonism, dystonia and Tourette syndrome. FSIs are the only striatal neurons to express the calcium-binding protein parvalbumin (PV). This selective expression of PV raises questions about the functional role of this Ca2+ buffer in controlling FSI Ca2+ dynamics and, consequently, FSI spiking mode and neurotransmission. To study the functional involvement of FSIs in striatal microcircuit activity and the role of PV in FSI function, we performed perforated patch recordings on enhanced green fluorescent protein-expressing FSIs in brain slices from control and PV−/− mice. Our results revealed that PV−/− FSIs fired more regularly and were more excitable than control FSIs by a mechanism in which Ca2+ buffering is linked to spiking activity as a result of the activation of small conductance Ca2+-dependent K+ channels. A modelling approach of striatal FSIs supports our experimental results. Furthermore, PV deletion modified frequency-specific short-term plasticity at inhibitory FSI to MSN synapses. Our results therefore reinforce the hypothesis that in FSIs, PV is crucial for fine-tuning of the temporal responses of the FSI network and for the orchestration of MSN populations. This, in turn, may play a direct role in the generation and pathology-related worsening of motor rhythms.
机译:纹状体快速刺突神经元(FSI)通过同步中等大小的棘突神经元(MSN)来调节纹状体的输出。最近的研究拓宽了我们对FSI的理解,表明它们与严重的运动障碍有关,例如帕金森综合症,肌张力障碍和Tourette综合征。 FSI是唯一表达钙结合蛋白小白蛋白(PV)的纹状体神经元。 PV的这种选择性表达引起了人们对该Ca 2 + 缓冲液在控制FSI Ca 2 + 动力学,进而控制FSI突增模式和神经传递中的功能性作用的疑问。为了研究FSI在纹状体微电路活动中的功能参与以及PV在FSI功能中的作用,我们对来自对照和PV-/-小鼠的脑切片中增强的表达绿色荧光蛋白的FSI进行了穿孔补丁录音。我们的研究结果表明,PV-/-FSI的发射比对照FSI更规则,并且更易激发,其机制是Ca 2 + 的缓冲作用是由于小电导Ca的活化而导致的突加活性 2 + 依赖的K + 通道。纹状体FSI的建模方法支持我们的实验结果。此外,PV删除修改了抑制性FSI对MSN突触的频率特异性短期可塑性。因此,我们的结果强化了以下假设:PV对于FSI网络的时间响应的微调和MSN人口的编排至关重要。反过来,这可能在运动节律的产生和病理相关的恶化中直接发挥作用。

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