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Phase Locking of Multiple Single Neurons to the Local Field Potential in Cat V1

机译:Cat V1中多个单个神经元对局部场电位的锁相

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摘要

The local field potential (LFP) is thought to reflect a temporal reference for neuronal spiking, which may facilitate information coding and orchestrate the communication between neural populations. To explore this proposed role, we recorded the LFP and simultaneously the spike activity of one to three nearby neurons in V1 of anesthetized cats during the presentation of drifting sinusoidal gratings, binary dense noise stimuli, and natural movies. In all stimulus conditions and during spontaneous activity, the average LFP power at frequencies >20 Hz was higher when neurons were spiking versus not spiking. The spikes were weakly but significantly phase locked to all frequencies of the LFP. The average spike phase of the LFP was stable across high and low levels of LFP power, but the strength of phase locking at low frequencies (≤10 Hz) increased with increasing LFP power. In a next step, we studied how strong stimulus responses of single neurons are reflected in the LFP and the LFP–spike relationship. We found that LFP power was slightly increased and phase locking was slightly stronger during strong compared with weak stimulus-locked responses. In summary, the coupling strength between high frequencies of the LFP and spikes was not strongly modulated by LFP power, which is thought to reflect spiking synchrony, nor was it strongly influenced by how strongly the neuron was driven by the stimulus. Furthermore, a comparison between neighboring neurons showed no clustering of preferred LFP phase. We argue that hypotheses on the relevance of phase locking in their current form are inconsistent with our findings.>SIGNIFICANCE STATEMENT The local field potential (LFP) is hypothesized to play a vital role in the efficient communication between neuronal populations, as well as in the efficient coding of information. Underlying these roles is the assumption that spikes can be strongly and reliably locked to certain phases of oscillations in the LFP. Gamma oscillations are thought to be the best candidate mechanism exerting the hypothesized roles of the LFP. They occur most reliably in response to specific artificial stimuli, but are usually very weak in response to natural movies or images. The current study finds that spikes exhibited weak phase locking when the power of gamma oscillations is weak and thus casts doubt on a general relevance of phase locking for neural communication and coding.
机译:人们认为局部场电势(LFP)反映了神经元突触的时间参考,这可能有助于信息编码和协调神经种群之间的通信。为了探究这一拟议的作用,我们在呈现漂移的正弦光栅,二进制密集噪声刺激和自然电影的过程中,记录了LFP以及麻醉猫V1中一到三个附近神经元的尖峰活动。在所有刺激条件下和自发活动期间,当神经元出现尖峰时,平均LFP功率在> 20 Hz时高于未尖峰。尖峰微弱但明显锁相到LFP的所有频率。 LFP的平均尖峰相位在高和低水平的LFP功率下都是稳定的,但是随着LFP功率的增加,低频(≤10Hz)下的锁相强度也会增加。在下一步中,我们研究了LFP和LFP与峰值之间的关系如何反映单个神经元的强烈刺激反应。我们发现,与弱激励锁定响应相比,强激励期间LFP功率略有增加,锁相稍强。总而言之,LFP功率与尖峰之间的耦合强度并未受到LFP功率的强烈调节,这被认为反映了尖峰同步性,也不受神经元受刺激力驱动的强烈影响。此外,相邻神经元之间的比较显示,优选的LFP相没有聚集。我们认为,关于当前形式的锁相相关性的假设与我们的发现不一致。>意义声明假设局部场势(LFP)在神经元群体之间的有效交流中起着至关重要的作用,以及有效的信息编码。这些作用的基础是这样的假设,即尖峰可以牢固而可靠地锁定在LFP中的某些振荡阶段。伽马振荡被认为是发挥LFP假设作用的最佳候选机制。它们对特定的人工刺激最可靠地发生,但对自然电影或图像的响应通常非常弱。当前的研究发现,当伽玛振荡的功率很弱时,尖峰会表现出弱的相位锁定,从而使人们对相位锁定与神经通讯和编码的一般相关性产生怀疑。

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