Linking brain activity across scales with simultaneous opto- and electrophysiology.

IF 4.8 2区 医学 Q1 NEUROSCIENCES Neurophotonics Pub Date : 2024-09-01 Epub Date: 2023-09-01 DOI:10.1117/1.NPh.11.3.033403
Christopher M Lewis, Adrian Hoffmann, Fritjof Helmchen
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Abstract

The brain enables adaptive behavior via the dynamic coordination of diverse neuronal signals across spatial and temporal scales: from fast action potential patterns in microcircuits to slower patterns of distributed activity in brain-wide networks. Understanding principles of multiscale dynamics requires simultaneous monitoring of signals in multiple, distributed network nodes. Combining optical and electrical recordings of brain activity is promising for collecting data across multiple scales and can reveal aspects of coordinated dynamics invisible to standard, single-modality approaches. We review recent progress in combining opto- and electrophysiology, focusing on mouse studies that shed new light on the function of single neurons by embedding their activity in the context of brain-wide activity patterns. Optical and electrical readouts can be tailored to desired scales to tackle specific questions. For example, fast dynamics in single cells or local populations recorded with multi-electrode arrays can be related to simultaneously acquired optical signals that report activity in specified subpopulations of neurons, in non-neuronal cells, or in neuromodulatory pathways. Conversely, two-photon imaging can be used to densely monitor activity in local circuits while sampling electrical activity in distant brain areas at the same time. The refinement of combined approaches will continue to reveal previously inaccessible and under-appreciated aspects of coordinated brain activity.

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将脑活动与同时进行的视生理学和电生理学联系起来。
大脑通过在空间和时间尺度上动态协调不同的神经元信号来实现适应性行为:从微循环中的快速动作电位模式到全脑网络中的慢速分布活动模式。理解多尺度动力学的原理需要同时监测多个分布式网络节点中的信号。将大脑活动的光学和电学记录相结合,有望在多个尺度上收集数据,并可以揭示标准单一模态方法所看不到的协调动力学方面。我们回顾了光和电生理学相结合的最新进展,重点是小鼠研究,这些研究通过将单个神经元的活动嵌入全脑活动模式的背景中,为单个神经元的功能提供了新的线索。光学和电气读数可以根据需要的规模进行定制,以解决特定问题。例如,用多电极阵列记录的单细胞或局部群体中的快速动力学可能与同时获得的光信号有关,这些光信号报告特定神经元亚群、非神经元细胞或神经调节通路中的活性。相反,双光子成像可以用于密集监测局部电路的活动,同时对远处大脑区域的电活动进行采样。组合方法的改进将继续揭示以前无法获得和未被充分认识的大脑协调活动方面。
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来源期刊
Neurophotonics
Neurophotonics Neuroscience-Neuroscience (miscellaneous)
CiteScore
7.20
自引率
11.30%
发文量
114
审稿时长
21 weeks
期刊介绍: At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.
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