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血流的高通量成像揭示了斑马鱼发育过程中血流动力学参数分布模式的发育变化。

High-Throughput Imaging of Blood Flow Reveals Developmental Changes in Distribution Patterns of Hemodynamic Quantities in Developing Zebrafish.

作者信息

Maung Ye Swe Soe, Kim Jung Kyung, Carretero Nuria Taberner, Phng Li-Kun

机构信息

Laboratory for Vascular Morphogenesis, RIKEN Center for Biosystems Dynamics Research (BDR), Kobe, Japan.

School of Mechanical Engineering, Kookmin University, Seoul, South Korea.

出版信息

Front Physiol. 2022 Jun 20;13:881929. doi: 10.3389/fphys.2022.881929. eCollection 2022.

Abstract

Mechanical forces from blood flow and pressure (hemodynamic forces) contribute to the formation and shaping of the blood vascular network during embryonic development. Previous studies have demonstrated that hemodynamic forces regulate signaling and gene expression in endothelial cells that line the inner surface of vascular tubes, thereby modifying their cellular state and behavior. Given its important role in vascular development, we still know very little about the quantitative aspects of hemodynamics that endothelial cells experience due to the difficulty in measuring forces . In this study, we sought to determine the magnitude of wall shear stress (WSS) exerted on ECs by blood flow in different vessel types and how it evolves during development. Utilizing the zebrafish as a vertebrate model system, we have established a semi-automated high-throughput fluorescent imaging system to capture the flow of red blood cells in an entire zebrafish between 2- and 6-day post-fertilization (dpf). This system is capable of imaging up to 50 zebrafish at a time. A semi-automated analysis method was developed to calculate WSS in zebrafish trunk vessels. This was achieved by measuring red blood cell flow using particle tracking velocimetry analysis, generating a custom-made script to measure lumen diameter, and measuring local tube hematocrit levels to calculate the effective blood viscosity at each developmental stage. With this methodology, we were able to determine WSS magnitude in different vessels at different stages of embryonic and larvae growth and identified developmental changes in WSS, with absolute levels of peak WSS in all vessel types falling to levels below 0.3 Pa at 6 dpf. Additionally, we discovered that zebrafish display an anterior-to-posterior trend in WSS at each developmental stage.

摘要

胚胎发育过程中,血流和压力产生的机械力(血液动力)有助于血管网络的形成和塑形。先前的研究表明,血液动力可调节血管内壁内皮细胞中的信号传导和基因表达,从而改变其细胞状态和行为。鉴于其在血管发育中的重要作用,由于测量力存在困难,我们对内皮细胞所经历的血液动力学的定量方面仍然知之甚少。在本研究中,我们试图确定不同血管类型中血流作用于内皮细胞的壁面剪应力(WSS)大小,以及它在发育过程中的变化情况。利用斑马鱼作为脊椎动物模型系统,我们建立了一个半自动高通量荧光成像系统,以捕捉受精后2至6天(dpf)整个斑马鱼体内红细胞的流动情况。该系统一次能够对多达50条斑马鱼进行成像。我们开发了一种半自动分析方法来计算斑马鱼躯干血管中的WSS。这是通过使用粒子跟踪测速分析测量红细胞流动、生成定制脚本来测量管腔直径以及测量局部管血细胞比容水平以计算每个发育阶段的有效血液粘度来实现的。通过这种方法,我们能够确定胚胎和幼虫生长不同阶段不同血管中的WSS大小,并确定了WSS的发育变化,所有血管类型的峰值WSS绝对水平在6 dpf时降至0.3 Pa以下。此外,我们发现斑马鱼在每个发育阶段的WSS都呈现从前到后的趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a7b/9251365/8a6d54bbdc67/fphys-13-881929-g001.jpg

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