Department of Cell Biology, Blavatnik Institute at Harvard Medical School, Boston, Massachusetts, USA.
Proteomics. 2022 Oct;22(19-20):e2200328. doi: 10.1002/pmic.202200328. Epub 2022 Sep 20.
Isobaric labeling has rapidly become a predominant strategy for proteome-wide abundance measurements. Coupled to mass spectrometry, sample multiplexing techniques using isobaric labeling are unparalleled for profiling proteins and posttranslational modifications across multiple samples in a single experiment. Here, I highlight aspects of isobaric labeling in the context of expanding the breadth of multiplexing, improving quantitative accuracy and proteome depth, and developing a wide range of diverse applications. I underscore two facets that enhance quantitative accuracy and reproducibility, specifically the availability of quality control standards for isobaric labeling experiments and the evolution of data acquisition methods. I also emphasize the necessity for standardized methodologies, particularly for emerging high-throughput workflows. Future developments in sample multiplexing will further strengthen the importance of isobaric labeling for comprehensive proteome profiling.
同位素质谱标签技术已迅速成为蛋白质组丰度测量的主要策略。与质谱联用,同位素质谱标签的样品多重化技术在单个实验中对多个样本中的蛋白质和翻译后修饰进行分析是无与伦比的。在这里,我将重点介绍同位素质谱标签在扩展多重化范围、提高定量准确性和蛋白质组深度以及开发广泛多样的应用方面的各个方面。我强调了两个增强定量准确性和重现性的方面,特别是同位素质谱标签实验的质量控制标准的可用性和数据采集方法的发展。我还强调了标准化方法的必要性,特别是对于新兴的高通量工作流程。样品多重化的未来发展将进一步加强同位素质谱标签在全面蛋白质组分析中的重要性。