Kimmel Center for Biology and Medicine at the Skirball Institute of Biomolecular Medicine, New York University School of Medicine, New York, New York 10016, USA.
Magn Reson Med. 2009 Dec;62(6):1431-9. doi: 10.1002/mrm.22113.
Vascular system development involves a complex, three-dimensional branching process that is critical for normal embryogenesis. In the brain, the arterial systems appear to develop in a stereotyped fashion, but no detailed quantitative analyses of the mouse embryonic cerebral arteries have been described. In this study, a gadolinium-based contrast perfusion method was developed to selectively enhance the cerebral arteries in fixed mouse embryos. Three-dimensional magnetic resonance micro-imaging (micro-MRI) data were acquired simultaneously from multiple embryos staged between 10 and 17 days of gestation, and a variety of image analysis methods was used to extract and analyze the cerebral arterial patterns. The results show that the primary arterial branches in the mouse brain are very similar between individuals, with the patterns established early and growth occurring by extension of the segments, while maintaining the underlying vascular geometry. To investigate the utility of this method for mutant mouse phenotype analysis, contrast-enhanced micro-MRI data were acquired from Gli2(-/-) mutant embryos and their wild-type littermates, showing several previously unreported vascular phenotypes in Gli2(-/-) embryos, including the complete absence of the basilar artery. These results demonstrate that contrast-enhanced micro-MRI provides a powerful tool for analyzing vascular phenotypes in a variety of genetically engineered mice.
血管系统的发育涉及一个复杂的三维分支过程,这对正常胚胎发生至关重要。在大脑中,动脉系统似乎以一种刻板的方式发育,但尚未对小鼠胚胎大脑动脉进行详细的定量分析。在这项研究中,开发了一种基于钆的对比灌注方法,以选择性增强固定小鼠胚胎中的大脑动脉。从 10 至 17 天龄的多个胚胎中同时获取三维磁共振微成像(micro-MRI)数据,并使用各种图像分析方法提取和分析大脑动脉模式。结果表明,小鼠大脑中的主要动脉分支在个体之间非常相似,其模式建立较早,通过节段的延伸来生长,同时保持血管的基本几何形状。为了研究该方法在突变体小鼠表型分析中的应用,从小鼠Gli2(-/-)突变体及其野生型同窝仔中获取对比增强 micro-MRI 数据,显示了Gli2(-/-)胚胎中几个以前未报道的血管表型,包括基底动脉完全缺失。这些结果表明,对比增强 micro-MRI 为分析各种基因工程小鼠的血管表型提供了有力工具。