Baylor College of Medicine, Department of Neuroscience, One Baylor Plaza, Houston, Texas 77030, USA.
J Biomed Opt. 2009 Nov-Dec;14(6):064033. doi: 10.1117/1.3275468.
We developed a two-photon microscope optimized for physiologically manipulating single neurons through their postsynaptic receptors. The optical layout fulfills the stringent design criteria required for high-speed, high-resolution imaging in scattering brain tissue with minimal photodamage. We detail the practical compensation of spectral and temporal dispersion inherent in fast laser beam scanning with acousto-optic deflectors, as well as a set of biological protocols for visualizing nearly diffraction-limited structures and delivering physiological synaptic stimuli. The microscope clearly resolves dendritic spines and evokes electrophysiological transients in single neurons that are similar to endogenous responses. This system enables the study of multisynaptic integration and will assist our understanding of single neuron function and dendritic computation.
我们开发了一种双光子显微镜,该显微镜经过优化,可通过突触后受体对单个神经元进行生理操控。该光学设计满足了在散射脑组织中进行高速、高分辨率成像的严格设计标准,同时最大限度地减少光损伤。我们详细介绍了利用声光偏转器对快速激光束扫描进行固有光谱和时间色散的实际补偿,以及一组用于可视化近衍射极限结构和传递生理突触刺激的生物学协议。该显微镜能够清晰地分辨树突棘,并在单个神经元中引发类似于内源性反应的电生理瞬变。该系统能够研究多突触整合,并有助于我们理解单个神经元的功能和树突计算。