Manish Mohapatra, James Eric Carmichael, Kyle S. Smith, Matthijs A. A. van der Meer
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引用次数: 0
摘要
纹状体被认为在多个收敛输入之间灵活切换,以支持适应性行为。“相干通信”(CTC)假说是实现这种灵活切换的潜在机制。为了使CTC在纹状体中起作用,纹状体兴奋性必须表现出节律性波动,例如与纹状体局部场电位(LFP)相相关的波动。为了验证这一基本要求,我们在头部固定的清醒小鼠(PV- cre:Ai-32, n = 18,9,雌性)中对表达chr2的纹状体快速尖峰PV+中间神经元(FSIs)施加恒定的输入刺激,并确定对该刺激的反应是否随LFP期而变化。我们发现大约三分之一(41.2%)的fsi在至少一个LFP频段表现出明显的相位依赖性兴奋性。相位依赖性兴奋性在δ (2–5 Hz)频段最为突出,无论是在患病率(23.5%的fsi采样)还是幅度(相位调制强度:平均响应的22%)方面。最易兴奋的相位倾向于内源性锁相,同样在δ波段最明显。这些结果支持纹状体场电位和峰场关系的功能相关性,并为纹状体中CTC的可能性提供了原理证明。
Optogenetic Mapping of Rhythmic Phase-Dependent Excitability in the Mouse Striatum
The striatum is thought to switch flexibly between multiple converging inputs to support adaptive behavior. The "communication through coherence" (CTC) hypothesis is a potential mechanism to implement such a flexible switching. For CTC to work in the striatum, striatal excitability must show rhythmic fluctuations, such as those related to the phase of the striatal local field potential (LFP). To test this fundamental requirement, we delivered a constant input stimulus to ChR2-expressing striatal fast-spiking PV+ interneurons (FSIs) in head-fixed awake mice (PV-Cre:Ai-32, n = 18, 9 female) and determined whether the response to this stimulus varied with LFP phase. We found that approximately one-third (41.2%) of FSIs exhibited significant phase-dependent excitability in at least one LFP frequency band. Phase-dependent excitability was most prominent in the delta (2–5 Hz) frequency band, both in terms of prevalence (23.5% of FSIs sampled) and magnitude (phase modulation strength: 22% of average response). The most excitable phase tended to align with endogenous phase-locking, again most clearly in the delta band. These results bolster the functional relevance of the striatal field potential and spike-field relationships and provide proof-of-principle support for the possibility of CTC in the striatum.
期刊介绍:
JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles