Elahi Sahar, Blackburn Brecken J, Lapierre-Landry Maryse, Gu Shi, Rollins Andrew M, Jenkins Michael W
Department of Pediatrics, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA.
Department of Biomedical Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA.
Biomed Opt Express. 2020 Aug 27;11(9):5297-5305. doi: 10.1364/BOE.395952. eCollection 2020 Sep 1.
Blood-induced shear stress influences gene expression. Abnormal shear stress patterns on the endocardium of the early-stage heart tube can lead to congenital heart defects. To have a better understanding of these mechanisms, it is essential to include shear stress measurements in longitudinal cohort studies of cardiac development. Previously reported approaches are computationally expensive and nonpractical when assessing many animals. Here, we introduce a new approach to estimate shear stress that does not rely on recording 4D image sets and extensive post processing. Our method uses two adjacent optical coherence tomography frames (B-scans) where lumen geometry and flow direction are determined from the structural data and the velocity is measured from the Doppler OCT signal. We validated our shear stress estimate by flow phantom experiments and applied it to live quail embryo hearts where observed shear stress patterns were similar to previous studies.
血流诱导的剪切应力会影响基因表达。早期心脏管心内膜上异常的剪切应力模式可导致先天性心脏缺陷。为了更好地理解这些机制,在心脏发育的纵向队列研究中纳入剪切应力测量至关重要。先前报道的方法在评估许多动物时计算成本高昂且不实用。在此,我们引入一种新的估计剪切应力的方法,该方法不依赖于记录4D图像集和广泛的后处理。我们的方法使用两个相邻的光学相干断层扫描帧(B扫描),其中管腔几何形状和流动方向由结构数据确定,速度由多普勒OCT信号测量。我们通过流动模型实验验证了我们的剪切应力估计,并将其应用于活鹌鹑胚胎心脏,观察到的剪切应力模式与先前的研究相似。