Time-Resolved Laser Speckle Contrast Imaging (TR-LSCI) of Cerebral Blood Flow

Faraneh Fathi;Siavash Mazdeyasna;Dara Singh;Chong Huang;Mehrana Mohtasebi;Xuhui Liu;Samaneh Rabienia Haratbar;Mingjun Zhao;Li Chen;Arin Can Ulku;Paul Mos;Claudio Bruschini;Edoardo Charbon;Lei Chen;Guoqiang Yu
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Abstract

To address many of the deficiencies in optical neuroimaging technologies, such as poor tempo-spatial resolution, low penetration depth, contact-based measurement, and time-consuming image reconstruction, a novel, noncontact, portable, time-resolved laser speckle contrast imaging (TR-LSCI) technique has been developed for continuous, fast, and high-resolution 2D mapping of cerebral blood flow (CBF) at different depths of the head. TR-LSCI illuminates the head with picosecond-pulsed, coherent, widefield near-infrared light and synchronizes a fast, high-resolution, gated single-photon avalanche diode camera to selectively collect diffuse photons with longer pathlengths through the head, thus improving the accuracy of CBF measurement in the deep brain. The reconstruction of a CBF map was dramatically expedited by incorporating convolution functions with parallel computations. The performance of TR-LSCI was evaluated using head-simulating phantoms with known properties and in-vivo rodents with varied hemodynamic challenges to the brain. TR-LSCI enabled mapping CBF variations at different depths with a sampling rate of up to 1 Hz and spatial resolutions ranging from tens/hundreds of micrometers on rodent head surfaces to 1-2 millimeters in deep brains. With additional improvements and validation in larger populations against established methods, we anticipate offering a noncontact, fast, high-resolution, portable, and affordable brain imager for fundamental neuroscience research in animals and for translational studies in humans.
脑血流时间分辨激光斑点对比成像(TR-LSCI)
为了解决光学神经成像技术的许多缺陷,如时间空间分辨率差、穿透深度低、基于接触的测量和耗时的图像重建,开发了一种新型的、非接触的、便携式的、时间分辨的激光散斑对比成像(TR-LSCI)技术,用于连续、快速、高分辨率的脑血流(CBF)二维成像。TR-LSCI采用皮秒脉冲、相干、宽视场近红外光照射头部,并同步快速、高分辨率、门控单光子雪崩二极管相机,选择性地收集路径较长的漫射光子通过头部,从而提高脑深部脑血流测量的准确性。将卷积函数与并行计算相结合,极大地加快了CBF图的重建速度。我们使用具有已知特性的模拟头部模型和具有不同脑部血流动力学挑战的活体啮齿动物来评估TR-LSCI的性能。TR-LSCI能够在不同深度绘制CBF变化,采样率高达1hz,空间分辨率范围从啮齿动物头部表面的数十/数百微米到深部大脑的1-2毫米。随着对现有方法的进一步改进和在更大人群中的验证,我们期望为动物的基础神经科学研究和人类的转化研究提供一种非接触式、快速、高分辨率、便携式和负担得起的脑成像仪。
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