Xie Yixuan, Brás-Costa Carolina, Lin Zongtao, Garcia Benjamin A
State Key Laboratory of Genetic Engineering, Greater Bay Area Institute of Precision Medicine (Guangzhou), School of Life Sciences and Institutes of Biomedical Sciences, Fudan University, Shanghai, China.
Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine in St. Louis, St. Louis, Missouri, USA.
Mass Spectrom Rev. 2024 Sep 22. doi: 10.1002/mas.21907.
Nucleic acids are fundamental biological molecules that encode and convey genetic information within living organisms. Over 150 modifications have been found in nucleic acids, which are involved in critical biological functions, including regulating gene expression, stabilizing nucleic acid structure, modulating protein translation, and so on. The dysregulation of nucleic acid modifications is correlated with many diseases such as cancers and neurological disorders. However, it is still challenging to simultaneously characterize and quantify diverse modifications using traditional genomic methods. Mass spectrometry (MS) has served as a crucial tool to solve this issue, and can directly identify the modified species through their distinct mass differences compared to the canonical ones and provide accurate quantitative information. This review surveys the history of nucleic acid modification discovery, advancements in MS-based methods, nucleic acid sample preparation, and applications in biological and medical research. We expect the high-throughput and valuable quantitative information from MS analysis will be more broadly applied to studying nucleic acid modification status in different pathological conditions, which is key to filling gaps in traditional genomics and transcriptomics research and enabling researchers to gain insights into epigenetics and epitranscriptomics.
核酸是在生物体中编码和传递遗传信息的基本生物分子。在核酸中已发现超过150种修饰,这些修饰参与关键的生物学功能,包括调节基因表达、稳定核酸结构、调控蛋白质翻译等。核酸修饰的失调与许多疾病相关,如癌症和神经疾病。然而,使用传统基因组方法同时表征和定量多种修饰仍然具有挑战性。质谱(MS)已成为解决这一问题的关键工具,它可以通过与标准核酸相比的独特质量差异直接识别修饰物种,并提供准确的定量信息。本文综述了核酸修饰发现的历史、基于质谱方法的进展、核酸样品制备以及在生物和医学研究中的应用。我们期望质谱分析提供的高通量和有价值的定量信息将更广泛地应用于研究不同病理条件下的核酸修饰状态,这对于填补传统基因组学和转录组学研究的空白以及使研究人员深入了解表观遗传学和表转录组学至关重要。