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使用光学相干断层扫描成像技术观察发育中的神经形态。

Imaging developing neural morphology using optical coherence tomography.

作者信息

Boppart S A, Bouma B E, Brezinski M E, Tearney G J, Fujimoto J G

机构信息

Harvard-MIT Division of Health Sciences and Technology, Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge 02139, USA.

出版信息

J Neurosci Methods. 1996 Dec;70(1):65-72. doi: 10.1016/S0165-0270(96)00104-5.

Abstract

Imaging technologies offer numerous possibilities to investigate the processes involved in neural development. The optical coherence tomography (OCT) technology is analogous to ultrasound backscatter microscopy except reflections of light are detected rather than sound. The OCT technology combines high-resolution in vivo imaging in a diode-based benchtop instrument capable of micron-scale resolution in transparent and non-transparent biological specimens. In this paper, we examine the potential of using OCT for the investigation of developing neural morphology. To demonstrate the capabilities of this technique in assessing neural development, we have chosen to image early normal and abnormal neural morphology in a common developmental biology model, Xenopus laevis. In vivo images clearly identify gross and subtle differences in neural structure and may offer an alternative to the costly and time-consuming process of repeated histological preparation for neural developmental studies. Because imaging can be performed rapidly and repeatedly, the morphological changes of single specimens can be followed throughout development. To illustrate the future potential of this technique, a state-of-the-art Cr4+:forsterite modelocked laser is used as a broad bandwidth light source to image individual cells in a developing specimen.

摘要

成像技术为研究神经发育过程提供了众多可能性。光学相干断层扫描(OCT)技术类似于超声背散射显微镜,只是检测的是光的反射而非声音。OCT技术在基于二极管的台式仪器中结合了高分辨率的体内成像,能够在透明和不透明生物样本中实现微米级分辨率。在本文中,我们研究了使用OCT来研究发育中的神经形态的潜力。为了证明该技术在评估神经发育方面的能力,我们选择在一种常见的发育生物学模型——非洲爪蟾中对早期正常和异常的神经形态进行成像。体内图像清晰地识别出神经结构的总体和细微差异,并且可能为神经发育研究中重复进行组织学制备这一昂贵且耗时的过程提供一种替代方法。由于成像可以快速且重复地进行,单个样本的形态变化在整个发育过程中都可以被追踪。为了说明该技术未来的潜力,一台最先进的Cr4 +:镁橄榄石锁模激光器被用作宽带光源,对发育中的样本中的单个细胞进行成像。

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