Key Laboratory of the Ministry of Education for Optoelectronic Measurement Technology and Instrument, Beijing Information Science and Technology University, Beijing, China.
Beijing Laboratory of Biomedical Testing Technology and Instruments, Beijing Information Science and Technology University, Beijing, China.
J Biophotonics. 2020 Oct;13(10):e202000245. doi: 10.1002/jbio.202000245. Epub 2020 Aug 12.
Optical coherence tomography angiography (OCTA) is a label-free, noninvasive biomedical imaging modality for mapping microvascular networks and quantifying blood flow velocities in vivo. Simple computation and fast processing are critical for the OCTA in some applications. Herein, we report on a normalized differentiation method for mapping cerebral microvasculature with the advantages of simple analysis and high image quality, benefitting from computation of differentiation and characteristics of normalization. Normalized differentiation values are validated to have a nearly linear relationship with flow velocities in a range using a flow phantom. The measurements in a rat cerebral cortex show that the OCTA based on the normalized differentiation analysis can generate microvascular images with high quality and monitor spatiotemporal dynamics of blood flow with simple computation and fast processing before and after localized ischemia induced by arterial occlusion.
光学相干断层扫描血管造影术(OCTA)是一种用于绘制微血管网络和定量体内血流速度的无标记、非侵入性生物医学成像模式。在某些应用中,简单的计算和快速的处理对于 OCTA 至关重要。在这里,我们报告了一种归一化差分方法,用于映射大脑微血管,该方法具有分析简单和图像质量高的优点,得益于差分的计算和归一化的特点。使用流动池验证了归一化差分值与流速在一定范围内具有近乎线性的关系。在大鼠大脑皮层的测量结果表明,基于归一化差分分析的 OCTA 可以生成高质量的微血管图像,并在动脉闭塞引起局部缺血前后进行简单的计算和快速处理,监测血流的时空动力学。