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成像小鼠胚胎心血管发育。

Imaging mouse embryonic cardiovascular development.

作者信息

Larina Irina V, Garcia Monica D, Vadakkan Tegy J, Larin Kirill V, Dickinson Mary E

出版信息

Cold Spring Harb Protoc. 2012 Oct 1;2012(10):1035-43. doi: 10.1101/pdb.top071498.

DOI:10.1101/pdb.top071498
PMID:23028074
Abstract

Early development of the mammalian cardiovascular system is a highly dynamic process. Live imaging is an essential tool for analyzing normal and abnormal cardiovascular development and dynamics. This article describes two optical approaches for live dynamic imaging of mouse embryonic cardiovascular development: confocal microscopy and optical coherence tomography (OCT). Confocal microscopy, used in combination with fluorescent protein reporter lines, enables visualization of the developing and remodeling cardiovascular system with submicron resolution and even allows visualization of subcellular details of labeled structures. We describe mouse transgenic lines that can be used to image the developing vasculature and characterize hemodynamics by tracking individual blood cells. Confocal microscopy of vital fluorescent markers reveals unique details about cell morphogenesis and movement; however, the imaging depth of this method is limited to ∼200 µm. This limitation can be addressed by using OCT, which allows three-dimensional (3D) imaging millimeters into tissue, although this is achieved at the expense of lower spatial resolution (2-10 µm). We describe here how OCT can be applied to the structural analysis of developing mouse embryos and hemodynamic analysis in deep embryonic vessels. These complementary approaches can be used to analyze cardiovascular defects in mutant animals to understand genetic signaling pathways regulating human development.

摘要

哺乳动物心血管系统的早期发育是一个高度动态的过程。活体成像对于分析正常和异常的心血管发育及动力学而言是一项必不可少的工具。本文介绍了两种用于小鼠胚胎心血管发育活体动态成像的光学方法:共聚焦显微镜和光学相干断层扫描(OCT)。共聚焦显微镜与荧光蛋白报告系结合使用,能够以亚微米分辨率可视化发育和重塑中的心血管系统,甚至还能可视化标记结构的亚细胞细节。我们描述了可用于对发育中的脉管系统成像并通过追踪单个血细胞来表征血流动力学的小鼠转基因系。对活体荧光标记物进行共聚焦显微镜观察可揭示有关细胞形态发生和运动的独特细节;然而,该方法的成像深度限于约200微米。使用OCT可以解决这一限制,OCT能够对组织内数毫米深处进行三维(3D)成像,不过这是以较低的空间分辨率(2 - 10微米)为代价实现的。我们在此描述了OCT如何应用于发育中小鼠胚胎的结构分析以及深部胚胎血管中的血流动力学分析。这些互补的方法可用于分析突变动物中的心血管缺陷,以了解调节人类发育的遗传信号通路。

相似文献

1
Imaging mouse embryonic cardiovascular development.成像小鼠胚胎心血管发育。
Cold Spring Harb Protoc. 2012 Oct 1;2012(10):1035-43. doi: 10.1101/pdb.top071498.
2
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Optical coherence tomography for embryonic imaging: a review.光学相干断层扫描在胚胎成像中的应用:综述。
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引用本文的文献

1
Mouse Cardiovascular Imaging.小鼠心血管成像。
Curr Protoc. 2024 Sep;4(9):e1116. doi: 10.1002/cpz1.1116.
2
Mouse embryo phenotyping with optical coherence tomography.利用光学相干断层扫描技术对小鼠胚胎进行表型分析。
Front Cell Dev Biol. 2022 Sep 9;10:1000237. doi: 10.3389/fcell.2022.1000237. eCollection 2022.
3
Three-dimensional label-free imaging of mammalian yolk sac vascular remodeling with optical resolution photoacoustic microscopy.利用光学分辨率光声显微镜对哺乳动物卵黄囊血管重塑进行三维无标记成像。
Photoacoustics. 2019 Dec 23;17:100152. doi: 10.1016/j.pacs.2019.100152. eCollection 2020 Mar.
4
Vertebrate embryos as tools for anti-angiogenic drug screening and function.脊椎动物胚胎作为抗血管生成药物筛选和功能研究的工具。
Reprod Toxicol. 2017 Jun;70:49-59. doi: 10.1016/j.reprotox.2016.11.013. Epub 2016 Nov 22.
5
Four-dimensional live imaging of hemodynamics in mammalian embryonic heart with Doppler optical coherence tomography.利用多普勒光学相干断层扫描技术对哺乳动物胚胎心脏血流动力学进行四维实时成像。
J Biophotonics. 2016 Aug;9(8):837-47. doi: 10.1002/jbio.201500314. Epub 2016 Mar 21.
6
Cardiovascular Imaging in Mice.小鼠心血管成像
Curr Protoc Mouse Biol. 2016 Mar 1;6(1):15-38. doi: 10.1002/9780470942390.mo150122.
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Optical coherence tomography guided microinjections in live mouse embryos: high-resolution targeted manipulation for mouse embryonic research.光学相干断层扫描引导下对活体小鼠胚胎进行显微注射:用于小鼠胚胎研究的高分辨率靶向操作。
J Biomed Opt. 2015 May;20(5):051020. doi: 10.1117/1.JBO.20.5.051020.
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Quantitative approaches to uncover physical mechanisms of tissue morphogenesis.定量方法揭示组织形态发生的物理机制。
Curr Opin Biotechnol. 2013 Oct;24(5):954-61. doi: 10.1016/j.copbio.2013.04.006. Epub 2013 May 4.
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Live imaging of mouse embryos.小鼠胚胎的实时成像。
Cold Spring Harb Protoc. 2011 Apr 1;2011(4):pdb.top104. doi: 10.1101/pdb.top104.