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Neural Circuits: Distinct frequency bands in the local field potential are differently tuned to stimulus drift rate

机译:神经回路:局部场电势中的不同频带针对刺激漂移率进行了不同的调整

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摘要

Local field potential (LFP) recorded with a microelectrode reflects the activity of several neural processes, including afferent synaptic inputs, microcircuit-level computations, and spiking activity. Objectively probing their contribution requires a design that allows dissociation between these potential contributors. Earlier reports have shown that the primate lateral geniculate nucleus (LGN) has a higher temporal frequency (drift rate) cutoff than the primary visual cortex (V1), such that at higher drift rates inputs into V1 from the LGN continue to persist, whereas output ceases, permitting partial dissociation. Using chronic microelectrode arrays, we recorded spikes and LFP from V1 of passively fixating macaques while presenting sinusoidal gratings drifting over a wide range. We further optimized the gratings to produce strong gamma oscillations, since recent studies in rodent V1 have reported LGN-dependent narrow-band gamma oscillations. Consistent with earlier reports, power in higher LFP frequencies (above ~140 Hz) tracked the population firing rate and were tuned to preferred drift rates similar to those for spikes. Significantly, power in the lower (up to ~40 Hz) frequencies increased transiently in the early epoch after stimulus onset, even at high drift rates, and had preferred drift rates higher than for spikes/high gamma. Narrow-band gamma (50–80 Hz) power was not strongly correlated with power in high or low frequencies and had much lower preferred temporal frequencies. Our results demonstrate that distinct frequency bands of the V1 LFP show diverse tuning profiles, which may potentially convey different attributes of the underlying neural activity.>NEW & NOTEWORTHY In recent years the local field potential (LFP) has been increasingly studied, but interpreting its rich frequency content has been difficult. We use a stimulus manipulation that generates different tuning profiles for low, gamma, and high frequencies of the LFP, suggesting contributions from potentially different sources. Our results have possible implications for design of better neural prosthesis systems and brain-machine interfacing applications.
机译:用微电极记录的局部场电势(LFP)反映了多个神经过程的活动,包括传入突触输入,微电路级计算和尖峰活动。客观地探究他们的贡献需要一种允许这些潜在贡献者之间分离的设计。较早的报道表明,灵长类外侧膝状核(LGN)的截止频率(漂移率)高于初级视觉皮层(V1),因此在较高的漂移率下,LGN向V1的输入继续存在,而输出停止,允许部分解离。使用慢性微电极阵列,我们记录了被动固定猕猴V1的峰值和LFP,同时呈现了在宽范围内漂移的正弦光栅。由于对啮齿动物V1的最新研究已经报道了依赖LGN的窄带伽马振荡,因此我们进一步优化了光栅以产生强伽马振荡。与早期的报告一致,较高的LFP频率(约140 Hz以上)中的功率跟踪了种群的发射速率,并被调整为类似于峰值的首选漂移速率。值得注意的是,即使在高漂移率下,较低的频率(最高〜40 Hz)的功率在刺激发生后的早期也瞬时增加,并且具有比峰值/高伽马值更高的优先漂移率。窄带伽马(50–80 Hz)功率与高频或低频功率没有强烈相关,而首选时间频率低得多。我们的研究结果表明,V1 LFP的不同频带显示出不同的调谐曲线,这可能潜在地传达了潜在的神经活动的不同属性。> NEW&NOTEWORTHY 越来越多的研究,但是很难解释其丰富的频率内容。我们使用一种刺激操作,该操作会为LFP的低频,伽玛和高频生成不同的调谐曲线,这表明可能来自不同来源的贡献。我们的结果可能对更好的神经假体系统和脑机接口应用程序的设计产生影响。

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