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用于激光散斑对比成像的小型化平台。

A miniaturized platform for laser speckle contrast imaging.

作者信息

Senarathna Janaka, Murari Kartikeya, Etienne-Cummings Ralph, Thakor Nitish V

机构信息

Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD 21205, USA.

出版信息

IEEE Trans Biomed Circuits Syst. 2012 Oct;6(5):437-45. doi: 10.1109/TBCAS.2012.2218106.

Abstract

Imaging the brain in animal models enables scientists to unravel new biological insights. Despite critical advancements in recent years, most laboratory imaging techniques comprise of bulky bench top apparatus that require the imaged animals to be anesthetized and immobilized. Thus, animals are imaged in their non-native state severely restricting the scope of behavioral experiments. To address this gap, we report a miniaturized microscope that can be mounted on a rat's head for imaging in awake and unrestrained conditions. The microscope uses laser speckle contrast imaging (LSCI), a high resolution yet wide field imaging modality for imaging blood vessels and perfusion. Design details of both the image formation and acquisition modules are presented. A Monte Carlo simulation was used to estimate the depth of tissue penetration achievable by the imaging system while the produced speckle Airy disc patterns were simulated using Fresnel's diffraction theory. The microscope system weighs only 7 g and occupies less than 5 cm³ and was successfully used to generate proof of concept LSCI images of rat brain vasculature. We validated the utility of the head-mountable system in an awake rat brain model by confirming no impairment to the rat's native behavior.

摘要

对动物模型的大脑进行成像,能让科学家揭示新的生物学见解。尽管近年来取得了重大进展,但大多数实验室成像技术都由庞大的台式仪器组成,这些仪器要求被成像的动物麻醉并固定。因此,动物在非自然状态下成像,严重限制了行为实验的范围。为了弥补这一差距,我们报告了一种小型显微镜,它可以安装在大鼠头部,用于在清醒和不受约束的条件下成像。该显微镜使用激光散斑对比成像(LSCI),这是一种用于血管和灌注成像的高分辨率且宽视野成像方式。文中介绍了图像形成和采集模块的设计细节。使用蒙特卡罗模拟来估计成像系统可实现的组织穿透深度,同时使用菲涅耳衍射理论模拟产生的散斑艾里斑图案。该显微镜系统仅重7克,体积小于5立方厘米,并成功用于生成大鼠脑血管系统的概念验证LSCI图像。我们通过确认对大鼠的自然行为没有损害,验证了该头戴式系统在清醒大鼠脑模型中的实用性。

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