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校正 z 运动伪影,以允许对行为小鼠中的突触活动进行群体成像。

Correction of z-motion artefacts to allow population imaging of synaptic activity in behaving mice.

机构信息

Sussex Neuroscience, School of Life Sciences, University of Sussex, Brighton, BN1 9QG, UK.

出版信息

J Physiol. 2020 May;598(10):1809-1827. doi: 10.1113/JP278957. Epub 2020 Mar 3.

Abstract

KEY POINTS

Motion artefacts associated with motor behaviour are an inevitable problem of multiphoton imaging in awake behaving animals, particularly when imaging synapses. Correction of axial motion artefacts usually requires volumetric imaging resulting in slower rates of acquisition. We describe a method to correct z-motion artefacts that is easy to implement and allows population imaging of synaptic activity while scanning a single plane in a standard multiphoton microscope. The method uses a reference volume acquired in two colour channels - an activity reporter and an anatomical marker of blood vessels. The procedure estimates the z-displacement in every frame and applies an intensity correction in which the z intensity profile for each synapse is modelled as a Moffat function. We demonstrate that the method allows synaptic calcium signals to be collected from populations of synaptic boutons in mouse primary visual cortex during locomotion.

ABSTRACT

Functional imaging of head-fixed, behaving mice using two-photon imaging of fluorescent activity reporters has become a powerful tool for studying the function of the brain. Motion artefacts are an inevitable problem during such experiments and are routinely corrected for in x and y dimensions. However, axial (z) shifts of several microns can also occur, leading to intensity fluctuations in structures such as synapses that are small compared to the axial point-spread function of the microscope. Here we present a simple strategy to correct z-motion artefacts arising over the course of a time-series experiment in a single optical plane. Displacement in z was calculated using dye-filled blood vessels as an anatomical marker, providing high contrast images and accuracy to within ∼0.1 µm. The axial profiles of ROIs corresponding to synapses were described using a Moffat function and this 'ROI-spread function' used to correct activity traces on an ROI-by-ROI basis. We demonstrate the accuracy and utility of the procedures in simulation experiments using fluorescent beads and then apply them to correcting measurements of synaptic activity in populations of vasoactive-intestinal peptide (VIP) interneurons expressing the synaptic reporter SyGCaMP6f. Correction of z-motion artefacts had a substantial impact on the apparent correlation between synaptic activity and running speed, demonstrating the importance of correcting these when performing imaging experiments in awake mice.

摘要

关键点

与运动行为相关的运动伪影是清醒活动动物多光子成像中不可避免的问题,特别是在对突触进行成像时。轴向运动伪影的校正通常需要体积成像,从而导致采集速度较慢。我们描述了一种易于实现的校正 z 向运动伪影的方法,该方法允许在标准多光子显微镜中扫描单个平面的同时对突触活动进行群体成像。该方法使用在两个颜色通道中获得的参考体积 - 活性报告器和血管的解剖标记物。该过程估计每个帧中的 z 位移,并应用强度校正,其中每个突触的 z 强度分布被建模为 Moffat 函数。我们证明该方法允许在运动过程中从小鼠初级视觉皮层的突触小泡群体中收集突触钙信号。

摘要

使用荧光活性报告器的双光子成像对头固定、活动的小鼠进行功能成像已成为研究大脑功能的强大工具。在这些实验中,运动伪影是一个不可避免的问题,在 x 和 y 方向上通常会进行校正。然而,几个微米的轴向(z)位移也可能发生,导致结构(如突触)的强度波动,与显微镜的轴向点扩散函数相比,这些波动较小。在这里,我们提出了一种简单的策略,可在单个光平面内的时间序列实验过程中校正 z 向运动伪影。使用充满染料的血管作为解剖标记物来计算 z 方向的位移,提供高对比度的图像和在 0.1μm 以内的准确性。使用 Moffat 函数描述对应于突触的 ROI 的轴向轮廓,并且使用此“ ROI 扩展函数”在 ROI 基础上对活动轨迹进行校正。我们在使用荧光珠的模拟实验中验证了该程序的准确性和实用性,然后将其应用于校正血管活性肠肽(VIP)中间神经元群体中表达突触报告基因 SyGCaMP6f 的突触活性的测量值。z 向运动伪影的校正对突触活动与跑步速度之间的表观相关性有重大影响,这表明在清醒小鼠中进行成像实验时校正这些伪影非常重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74e9/7318612/0911e284d639/TJP-598-1809-g002.jpg

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