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酶法合成高密度 RNA 微阵列

Enzymatic Synthesis of High-Density RNA Microarrays.

机构信息

Faculty of Chemistry, Institute of Inorganic Chemistry, University of Vienna, Josef-Holaubek-Platz 2 (UZA 2), Vienna, Austria.

Chair of Food Chemistry and Molecular Sensory Science, Technical University of Munich, Lise-Meitner-Straße 34, Freising, Germany.

出版信息

Curr Protoc. 2023 Feb;3(2):e667. doi: 10.1002/cpz1.667.

Abstract

Oligonucleotide microarrays are used to investigate the interactome of nucleic acids. DNA microarrays are commercially available, whereas equivalent RNA microarrays are not. This protocol describes a method to convert DNA microarrays of any density and complexity into RNA microarrays using only readily available materials and reagents. This simple conversion protocol will facilitate the accessibility of RNA microarrays to a wide range of researchers. In addition to general considerations for the design of a template DNA microarray, this procedure describes the experimental steps of hybridization of an RNA primer to the immobilized DNA, followed by its covalent attachment via psoralen-mediated photocrosslinking. The subsequent enzymatic processing steps comprise the extension of the primer with T7 RNA polymerase to generate complementary RNA, and finally the removal of the DNA template with TURBO DNase. Beyond the conversion process, we also describe approaches to detect the RNA product either by internal labeling with fluorescently labeled NTPs or via hybridization to the product strand, a step that can then be complemented by an RNase H assay to confirm the nature of the product. © 2023 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol: Conversion of a DNA microarray to an RNA microarray Alternate Protocol: Detection of RNA via incorporation of Cy3-UTP Support Protocol 1: Detection of RNA via hybridization Support Protocol 2: RNase H assay.

摘要

寡核苷酸微阵列用于研究核酸的互作组。DNA 微阵列可商业化获得,而等效的 RNA 微阵列则不可用。本协议描述了一种仅使用现成的材料和试剂将任何密度和复杂性的 DNA 微阵列转换为 RNA 微阵列的方法。这种简单的转换方案将使 RNA 微阵列更容易为广泛的研究人员所使用。除了模板 DNA 微阵列设计的一般考虑因素外,本程序还描述了将 RNA 引物杂交到固定化 DNA 上的实验步骤,随后通过补骨脂素介导的光交联将其共价连接。随后的酶处理步骤包括用 T7 RNA 聚合酶延伸引物以生成互补 RNA,最后用 TURBO DNase 去除 DNA 模板。除了转换过程外,我们还描述了通过内部标记带有荧光标记的 NTP 或通过杂交到产物链来检测 RNA 产物的方法,然后可以通过 RNase H 测定来补充该步骤,以确认产物的性质。© 2023 作者。Wiley Periodicals LLC 出版的《当代协议》。基本方案:将 DNA 微阵列转换为 RNA 微阵列备用方案:通过掺入 Cy3-UTP 检测 RNA 支持方案 1:通过杂交检测 RNA 支持方案 2:RNase H 测定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb59/10946701/4dfa7906d760/CPZ1-3-0-g006.jpg

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