We propose a new optical coherence tomography (OCT) based method to measure red blood cell (RBC) velocities of single capillaries in the cortex of rodent brain. This OCT capillary velocimetry exploits quantitative laser speckle contrast analysis to estimate speckle decorrelation rate from the measured temporal OCT speckle signals, which is related to microcirculatory flow velocity. We hypothesize that OCT signal due to sub-surface capillary flow can be treated as the speckle signal in the single scattering regime and thus its time scale of speckle fluctuations can be subjected to single scattering laser speckle contrast analysis to derive characteristic decorrelation time. To validate this hypothesis, OCT measurements are conducted on a single capillary flow phantom operating at preset velocities, in which M-mode B-frames are acquired using a high-speed OCT system. Analysis is then performed on the time-varying OCT signals extracted at the capillary flow, exhibiting a typical inverse relationship between the estimated decorrelation time and absolute RBC velocity, which is then used to deduce the capillary velocities. We apply the method to in vivo measurements of mouse brain, demonstrating that the proposed approach provides additional useful information in the quantitative assessment of capillary hemodynamics, complementary to that of OCT angiography.

译文

:我们提出了一种新的基于光学相干断层扫描(OCT)的方法来测量啮齿动物大脑皮层中单个毛细血管的红细胞(RBC)速度。该OCT毛细管测速仪利用定量激光散斑对比度分析来根据测得的时间OCT散斑信号估计散斑去相关率,这与微循环流速有关。我们假设,由于表面下毛细血管流动而产生的OCT信号在单个散射状态下可被视为散斑信号,因此,其散斑波动的时间尺度可以进行单散射激光散斑对比度分析,以得出特征去相关时间。为了验证该假设,在以预设速度运行的单个毛细管流动体模上进行了OCT测量,其中使用高速OCT系统获取M模式B帧。然后对在毛细管流处提取的随时间变化的OCT信号进行分析,表现出估计的去相关时间与绝对RBC速度之间的典型反比关系,然后将其用于推导毛细管速度。我们将该方法应用于小鼠大脑的体内测量,证明了所提出的方法在定量评估毛细血管血流动力学方面提供了更多有用的信息,与OCT血管造影技术相辅相成。

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