Ruelcke Jayde E, Loo Dorothy, Hill Michelle M
The University of Queensland, Diamantina Institute, The University of Queensland, Translational Research Institute, 37 Kent St, Woolloongabba, QLD 4102, Australia.
The University of Queensland, Diamantina Institute, The University of Queensland, Translational Research Institute, 37 Kent St, Woolloongabba, QLD 4102, Australia; Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St Lucia, QLD 4072, Australia.
J Proteomics. 2016 Oct 21;149:3-6. doi: 10.1016/j.jprot.2016.03.025. Epub 2016 Apr 13.
Peptide generation by trypsin digestion is typically the first step in mass spectrometry-based proteomics experiments, including 'bottom-up' discovery and targeted proteomics using multiple reaction monitoring. Manual tryptic digest and the subsequent clean-up steps can add variability even before the sample reaches the analytical platform. While specialized filter plates and tips have been designed for automated sample processing, the specialty reagents required may not be accessible or feasible due to their high cost. Here, we report a lower-cost semi-automated protocol for in-gel digestion and GeLC using standard 96-well microplates. Further cost savings were realized by re-using reagent tips with optimized sample ordering. To evaluate the methodology, we compared a simple mixture of 7 proteins and a complex cell-lysate sample. The results across three replicates showed that our semi-automated protocol had performance equal to or better than a manual in-gel digestion with respect to replicate variability and level of contamination. In this paper, we also provide the Agilent Bravo method file, which can be adapted to other liquid handlers. The simplicity, reproducibility, and cost-effectiveness of our semi-automated protocol make it ideal for routine in-gel and GeLC sample preparations, as well as high throughput processing of large clinical sample cohorts.
通过胰蛋白酶消化生成肽段通常是基于质谱的蛋白质组学实验的第一步,包括“自下而上”的发现型蛋白质组学以及使用多反应监测的靶向蛋白质组学。在样品到达分析平台之前,手动胰蛋白酶消化及后续的净化步骤就可能增加变异性。虽然已经设计了专门的过滤板和吸头用于自动化样品处理,但所需的特殊试剂可能因成本高昂而无法获取或不可行。在此,我们报告一种使用标准96孔微孔板进行胶内消化和凝胶内消化液相色谱(GeLC)的低成本半自动化方案。通过重复使用试剂吸头并优化样品排序进一步节省了成本。为评估该方法,我们比较了7种蛋白质的简单混合物和复杂的细胞裂解物样品。三次重复实验的结果表明,就重复变异性和污染水平而言,我们的半自动化方案的性能与手动胶内消化相当或更优。在本文中,我们还提供了安捷伦Bravo方法文件,该文件可适用于其他液体处理仪。我们的半自动化方案的简便性、可重复性和成本效益使其非常适合常规的胶内和GeLC样品制备以及大型临床样本队列的高通量处理。