Uppsala University , Unit of Developmental Genetics, Department of Neuroscience, Husargatan 3, 75237, Uppsala, Sweden.
Uppsala University, Unit of Developmental Genetics, Department of Neuroscience, Husargatan 3, 75237, Uppsala, Sweden; Federal University of Rio Grande do Norte, Brain Institute, Avenida Nascimento de Castro, 2155, 59056-450, Natal-RN, Brazil.
Neurophotonics. 2016 Jan;3(1):015002. doi: 10.1117/1.NPh.3.1.015002. Epub 2016 Jan 19.
Optogenetics allows light activation of genetically defined cell populations and the study of their link to specific brain functions. While it is a powerful method that has revolutionized neuroscience in the last decade, the shortcomings of directly stimulating electrodes and living tissue with light have been poorly characterized. Here, we assessed the photovoltaic effects in local field potential (LFP) recordings of the mouse hippocampus. We found that light leads to several artifacts that resemble genuine LFP features in animals with no opsin expression, such as stereotyped peaks at the power spectrum, phase shifts across different recording channels, coupling between low and high oscillation frequencies, and sharp signal deflections that are detected as spikes. Further, we tested how light stimulation affected hippocampal LFP recordings in mice expressing channelrhodopsin 2 in parvalbumin neurons (PV/ChR2 mice). Genuine oscillatory activity at the frequency of light stimulation could not be separated from light-induced artifacts. In addition, light stimulation in PV/ChR2 mice led to an overall decrease in LFP power. Thus, genuine LFP changes caused by the stimulation of specific cell populations may be intermingled with spurious changes caused by photovoltaic effects. Our data suggest that care should be taken in the interpretation of electrophysiology experiments involving light stimulation.
光遗传学允许对遗传定义的细胞群体进行光激活,并研究它们与特定脑功能的联系。虽然它是一种强大的方法,在过去十年中彻底改变了神经科学,但光直接刺激电极和活体组织的缺点还没有得到很好的描述。在这里,我们评估了小鼠海马体局部场电位 (LFP) 记录中的光伏效应。我们发现,光会导致几种伪影,这些伪影在没有光感受器表达的动物中类似于真正的 LFP 特征,例如在功率谱上出现典型的峰值、不同记录通道之间的相移、低频和高频之间的耦合以及被检测为尖峰的急剧信号偏移。此外,我们测试了在表达通道视紫红质 2 的钙调蛋白神经元 (PV/ChR2 小鼠) 中光刺激如何影响海马体 LFP 记录。光刺激频率下的真正振荡活动不能与光诱导的伪影分开。此外,在 PV/ChR2 小鼠中进行光刺激会导致 LFP 功率整体下降。因此,由特定细胞群体刺激引起的真正 LFP 变化可能与由光伏效应引起的虚假变化交织在一起。我们的数据表明,在涉及光刺激的电生理实验的解释中应谨慎行事。