首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Wide. Fast. Deep: Recent Advances in Multiphoton Microscopy of In Vivo Neuronal Activity
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Wide. Fast. Deep: Recent Advances in Multiphoton Microscopy of In Vivo Neuronal Activity

机译:宽的。 快速地。 深:体内神经元活动的多光子显微镜近期进展

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Multiphoton microscopy (MPM) has emerged as one of the most powerful and widespread technologies to monitor the activity of neuronal networks in awake, behaving animals over long periods of time. MPM development spanned across decades and crucially depended on the concurrent improvement of calcium indicators that report neuronal activity as well as surgical protocols, head fixation approaches, and innovations in optics and microscopy technology. Here we review the last decade of MPM development and highlight how in vivo imaging has matured and diversified, making it now possible to concurrently monitor thousands of neurons across connected brain areas or, alternatively, small local networks with sampling rates in the kilohertz range. This review includes different laser scanning approaches, such as multibeam technologies as well as recent developments to image deeper into neuronal tissues using new, long-wavelength laser sources. As future development will critically depend on our ability to resolve and discriminate individual neuronal spikes, we will also describe a simple framework that allows performing quantitative comparisons between the reviewed MPM instruments. Finally, we provide our own opinion on how the most recent MPM developments can be leveraged at scale to enable the next generation of discoveries in brain function.
机译:Multiophoton显微镜(MPM)已成为监测清醒,在长时间的神经网络活动中监测神经元网络的活动之一的技术之一。 MPM开发跨越几十年来跨越,并对报告神经元活动以及光学和显微镜技术的手术协议,头部固定方法和创新进行钙指标并发改进钙指标。在这里,我们回顾了MPM开发的最后十年,并突出了体内成像如何成熟和多样化,现在可以同时监测数千个跨越连接的大脑区域的神经元,或者是小型本地网络,在千赫兹范围内采用采样率。该审查包括不同的激光扫描方法,例如多滨技术以及使用新的长波长激光来源更深入地映像到神经元组织的发展。由于未来的发展将重视我们解决和鉴别单个神经元尖峰的能力,我们还将描述一个简单的框架,允许在审查的MPM仪器之间进行定量比较。最后,我们为自己的意见提供了最新的MPM开发如何在规模中利用,以便在大脑功能中实现下一代发现。

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