Vogel Nicolas, Schiebel Katrin, Humeny Andreas
Institut für Biochemie, Emil-Fischer-Zentrum, Friedrich-Alexander-Universität Erlangen-Nürnberg, Germany.
Transfus Med Hemother. 2009;36(4):253-262. doi: 10.1159/000225089. Epub 2009 Jul 10.
With the decipherment of the human genome, new questions have moved into the focus of today's research. One key aspect represents the discovery of DNA variations capable to influence gene transcription, RNA splicing, or regulating processes, and their link to pathology. Matrix-assisted laser desorption/ionization-time of flight mass spectrometry (MALDI-TOF-MS) is a powerful tool for the qualitative investigation and relative quantification of variations like single nucleotide polymorphisms, DNA methylation, microsatellite instability, or loss of heterozygosity. After its introduction into proteomics, efforts were made to adopt this technique to DNA analysis. Initially intended for peptide/protein analysis, it held several difficulties for application to nucleic acids. Today, MALDI-TOF-MS has reached worldwide acceptance and application in nucleic acid research, with a wide spectrum of methods being available. One of the most versatile approaches relies on primer extension to genotype single alleles, microsatellite repeat lengths or the methylation status of a given cytosine. Optimized methods comprising intelligent primer design and proper nucleotide selection for primer extension enabled multiplexing of reactions, rendering the analysis more economic due to parallel genotyping of several alleles in a single experiment. Laboratories equipped with MALDI-TOF-MS possess a universal technical platform for the analysis of a large variety of different molecules.
随着人类基因组的破译,新问题已成为当今研究的焦点。一个关键方面是发现能够影响基因转录、RNA剪接或调控过程的DNA变异,以及它们与病理学的联系。基质辅助激光解吸/电离飞行时间质谱(MALDI-TOF-MS)是一种强大的工具,可用于定性研究和相对定量分析单核苷酸多态性、DNA甲基化、微卫星不稳定性或杂合性缺失等变异。在其被引入蛋白质组学之后,人们努力将该技术应用于DNA分析。它最初旨在用于肽/蛋白质分析,应用于核酸时存在一些困难。如今,MALDI-TOF-MS在核酸研究中已得到全球认可和应用,有多种方法可供使用。最通用的方法之一是基于引物延伸来对单个等位基因、微卫星重复长度或特定胞嘧啶的甲基化状态进行基因分型。包括智能引物设计和用于引物延伸的适当核苷酸选择在内的优化方法实现了反应的多重化,由于在单个实验中对多个等位基因进行平行基因分型,使得分析更加经济。配备MALDI-TOF-MS的实验室拥有一个用于分析多种不同分子的通用技术平台。