首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Light-sheet Fluorescence Microscopy to Capture 4-Dimensional Images of the Effects of Modulating Shear Stress on the Developing Zebrafish Heart
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Light-sheet Fluorescence Microscopy to Capture 4-Dimensional Images of the Effects of Modulating Shear Stress on the Developing Zebrafish Heart

机译:光片荧光显微镜捕获调制的应力对发展中的斑马鱼心脏的影响的4维图像。

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摘要

The hemodynamic forces experienced by the heart influence cardiac development, especially trabeculation, which forms a network of branching outgrowths from the myocardium. Genetic program defects in the Notch signaling cascade are involved in ventricular defects such as Left Ventricular Non-Compaction Cardiomyopathy or Hypoplastic Left Heart Syndrome. Using this protocol, it can be determined that shear stress driven trabeculation and Notch signaling are related to one another. Using Light-sheet Fluorescence Microscopy, visualization of the developing zebrafish heart was possible. In this manuscript, it was assessed whether hemodynamic forces modulate the initiation of trabeculation via Notch signaling and thus, influence contractile function occurs. For qualitative and quantitative shear stress analysis, 4-D (3-D+time) images were acquired during zebrafish cardiac morphogenesis, and integrated light-sheet fluorescence microscopy with 4-D synchronization captured the ventricular motion. Blood viscosity was reduced via gata1a-morpholino oligonucleotides (MO) micro-injection to decrease shear stress, thereby, down-regulating Notch signaling and attenuating trabeculation. Co-injection of Nrg1 mRNA with gata1a MO rescued Notch-related genes to restore trabeculation. To confirm shear stress driven Notch signaling influences trabeculation, cardiomyocyte contraction was further arrested via tnnt2a-MO to reduce hemodynamic forces, thereby, down-regulating Notch target genes to develop a non-trabeculated myocardium. Finally, corroboration of the expression patterns of shear stress-responsive Notch genes was conducted by subjecting endothelial cells to pulsatile flow. Thus, the 4-D light-sheet microscopy uncovered hemodynamic forces underlying Notch signaling and trabeculation with clinical relevance to non-compaction cardiomyopathy.
机译:心脏经历的血液动力学力会影响心脏的发育,尤其是小梁形成,从而形成心肌分支分支的网络。 Notch信号级联反应中的遗传程序缺陷与诸如左心室非紧密型心肌病或增生性左心综合征等心室缺陷有关。使用此协议,可以确定剪切应力驱动的小梁与Notch信号相互关联。使用光片荧光显微镜,可以观察到正在发育的斑马鱼心脏。在此手稿中,评估了血液动力是否通过Notch信号调节小梁的形成,从而影响收缩功能的发生。对于定性和定量切应力分析,在斑马鱼心脏形态发生过程中获取了4-D(3-D + time)图像,并通过集成了4-D同步的光片荧光显微镜技术捕获了心室运动。通过gata1a-吗啉代寡核苷酸(MO)显微注射降低血液粘度,以降低剪切应力,从而下调Notch信号传导并减弱小梁。 Nrg1 mRNA与gata1a MO的共同注射挽救了Notch相关基因,以恢复小梁。为了确认剪切应力驱动的Notch信号传导对小梁的影响,通过tnnt2a-MO进一步阻止了心肌细胞的收缩,以降低血液动力,从而下调Notch靶基因,从而形成非小梁的心肌。最后,通过使内皮细胞经受脉动流来证实剪切应力响应性Notch基因的表达模式。因此,4-D光片显微镜检查发现了Notch信号传导和小梁形成的血流动力学力,与非致密性心肌病具有临床相关性。

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