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Generation and use of a tailored gene array to investigate vascular biology.

机译:量身定制的基因阵列的产生和使用,以研究血管生物学。

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Vasculogenesis, angiogenesis and vascular remodelling are complex processes where the fate of several cell types is determined by different signalling networks. Many of these networks ultimately function by changing the abundance of RNA transcripts within the cells which constitute blood vessel walls. Researchers can now map these transcript abundance changes using gene array technology. In this review, we describe the design, production and use of a gene array specifically tailored to investigate vascular biology. We describe the advantages of tailored gene arrays, and give detailed protocols based on our experience to allow the reader to use such gene arrays to generate meaningful data. We list the issues to consider when choosing and verifying the genes and splice variants included in an array, and describe our use of Arabidopsis sp. RNA spikes for quality control. We present data that illustrates the absolute necessity for both technical and biological replicates to be incorporated in the design ofgene array experiments using primary cells such as HUVECS. Finally, we describe methods for the normalisation and interpretation of the data that gene arrays produce. The approach to gene array technology described here is easily within reach of the budget and expertise of most academic research groups.
机译:血管生成,血管生成和血管重塑是复杂的过程,其中几种细胞类型的命运由不同的信号网络决定。这些网络中的许多最终都通过改变构成血管壁的细胞内RNA转录物的丰度而起作用。研究人员现在可以使用基因阵列技术绘制这些转录本丰度变化的图。在这篇综述中,我们描述了专门为研究血管生物学而设计的基因阵列的设计,生产和使用。我们描述了量身定制的基因阵列的优势,并根据我们的经验给出了详细的协议,以使读者能够使用此类基因阵列生成有意义的数据。我们列出了选择和验证阵列中包含的基因和剪接变体时要考虑的问题,并描述了拟南芥属的使用。 RNA峰用于质量控制。我们提供的数据说明了在使用原代细胞(例如HUVECS)进行基因阵列实验设计中纳入技术和生物学复制的绝对必要性。最后,我们描述了基因阵列产生的数据的标准化和解释方法。在此描述的基因阵列技术的方法很容易就能达到大多数学术研究小组的预算和专业知识。

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