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具有直接波前传感的自适应光学双光子显微镜的构建与使用指南。

Guide to the construction and use of an adaptive optics two-photon microscope with direct wavefront sensing.

作者信息

Yao Pantong, Liu Rui, Broginni Thomas, Thunemann Martin, Kleinfeld David

出版信息

bioRxiv. 2023 Jan 24:2023.01.24.525307. doi: 10.1101/2023.01.24.525307.

Abstract

Two-photon microscopy, combined with appropriate optical labeling, has enabled the study of structure and function throughout nervous systems. This methodology enables, for example, the measurement and tracking of sub-micrometer structures within brain cells, the spatio-temporal mapping of spikes in individual neurons, and the spatio-temporal mapping of transmitter release in individual synapses. Yet the spatial resolution of two-photon microscopy rapidly degrades as imaging is attempted at depths more than a few scattering lengths into tissue, i.e., below the superficial layers that constitute the top 300 to 400 µm of neocortex. To obviate this limitation, we measure the wavefront at the focus of the excitation beam and utilize adaptive optics that alters the incident wavefront to achieve an improved focal volume. We describe the constructions, calibration, and operation of a two-photon microscopy that incorporates adaptive optics to restore diffraction-limited resolution throughout the nearly 900 µm depth of mouse cortex. Our realization utilizes a guide star formed by excitation of red-shifted dye within the blood serum to directly measure the wavefront. We incorporate predominantly commercial optical, optomechanical, mechanical, and electronic components; computer aided design models of the exceptional custom components are supplied. The design is modular and allows for expanded imaging and optical excitation capabilities. We demonstrate our methodology in mouse neocortex by imaging the morphology of somatostatin-expressing neurons at 700 µm beneath the pia, calcium dynamics of layer 5b projection neurons, and glutamate transmission to L4 neurons.

摘要

双光子显微镜结合适当的光学标记,能够对整个神经系统的结构和功能进行研究。例如,这种方法能够测量和追踪脑细胞内的亚微米结构、单个神经元中尖峰的时空映射以及单个突触中神经递质释放的时空映射。然而,当试图对组织中超过几个散射长度的深度进行成像时,即低于构成新皮层顶部300至400微米的表层以下时,双光子显微镜的空间分辨率会迅速下降。为了消除这一限制,我们测量激发光束焦点处的波前,并利用自适应光学技术改变入射波前,以实现更好的焦斑体积。我们描述了一种双光子显微镜的构造、校准和操作,该显微镜结合了自适应光学技术,以在小鼠皮层近900微米的深度范围内恢复衍射极限分辨率。我们的实现利用血清中红移染料激发形成的导星来直接测量波前。我们主要采用商用光学、光机械、机械和电子组件;提供了特殊定制组件的计算机辅助设计模型。该设计是模块化的,允许扩展成像和光学激发能力。我们通过对软膜下700微米处表达生长抑素的神经元形态、5b层投射神经元的钙动力学以及谷氨酸向L4神经元的传递进行成像,在小鼠新皮层中展示了我们的方法。

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