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A high-density, high-channel count, multiplexed mu ECoG array for auditory-cortex recordings

机译:高密度,高通道计数,用于听觉卡波特录制的多路复用MU ECOG阵列

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摘要

Our understanding of the large-scale population dynamics of neural activity is limited, in part, by our inability to record simultaneously from large regions of the cortex. Here, we validated the use of a large-scale active microelectrode array that simultaneously records 196 multiplexed micro-electrocortigraphical (mu ECoG) signals from the cortical surface at a very high density (1,600 electrodes/cm(2)). We compared mu ECoG measurements in auditory cortex using a custom "active" electrode array to those recorded using a conventional "passive" mu ECoG array. Both of these array responses were also compared with data recorded via intrinsic optical imaging, which is a standard methodology for recording sound-evoked cortical activity. Custom active mu ECoG arrays generated more veridical representations of the tonotopic organization of the auditory cortex than current commercially available passive mu ECoG arrays. Furthermore, the cortical representation could be measured efficiently with the active arrays, requiring as little as 13.5 s of neural data acquisition. Next, we generated spectrotemporal receptive fields from the recorded neural activity on the active mu ECoG array and identified functional organizational principles comparable to those observed using intrinsic metabolic imaging and single-neuron recordings. This new electrode array technology has the potential for large-scale, temporally precise monitoring and mapping of the cortex, without the use of invasive penetrating electrodes.
机译:我们对神经活动的大规模人口动态的理解部分是有限的,部分是我们无法与皮质大区域同时记录。在这里,我们验证了使用大规模有源微电极阵列,该大型有源微电极阵列同时以非常高的密度(1,600电极/ cm(2))从皮质表面记录196多路复用的微电灼物(MU ECOG)信号。我们将MU ECOG测量比较了在听觉皮层中使用自定义“有源”电极阵列来使用传统的“被动”MU ECOG阵列记录的那些。也将两种阵列响应与通过内在光学成像记录的数据进行比较,这是用于记录声诱发皮质活动的标准方法。自定义活动MU ECOG阵列产生了听觉皮层的音调组织的更多验证表示,而不是当前商业上可用的无源MU ECOG阵列。此外,可以用活性阵列有效地测量皮质表示,需要几乎达到神经数据采集的13.5秒。接下来,我们从活动MU ECOG阵列上的记录的神经活动产生光谱仪接收领域,并确定了使用内在代谢成像和单神经元记录观察到的功能组织原则。这种新电极阵列技术具有大规模,在不使用侵入性穿透电极的情况下进行大规模,时间上精确的监测和映射。

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