Department of Chemistry and Biochemistry, University of Notre Dame, IN 46556, USA.
Berthiaume Institute for Precision Health, University of Notre Dame, Notre Dame, IN 46556, USA.
Anal Methods. 2023 Feb 16;15(7):916-924. doi: 10.1039/d2ay01549h.
Complete enzymatic digestion of proteins for bottom-up proteomics is substantially improved by use of detergents for denaturation and solubilization. Detergents however, are incompatible with many proteases and highly detrimental to LC-MS/MS. Recently; filter-based methods have seen wide use due to their capacity to remove detergents and harmful reagents prior to digestion and mass spectrometric analysis. We hypothesized that non-specific protein binding to negatively charged silica-based filters would be enhanced by addition of lyotropic salts, similar to DNA purification. We sought to exploit these interactions and investigate if low-cost DNA purification spin-filters, 'Minipreps,' efficiently and reproducibly bind proteins for digestion and LC-MS/MS analysis. We propose a new method, Miniprep Assisted Proteomics (MAP), for sample preparation. We demonstrate binding capacity, performance, recovery and identification rates for proteins and whole-cell lysates using MAP. MAP recovered equivalent or greater protein yields from 0.5-50 μg analyses benchmarked against commercial trapping preparations. Nano UHPLC-MS/MS proteome profiling of lysates of had 99.3% overlap existing approaches and reproducibility of replicate minipreps was 98.8% at the 1% FDR protein level. Label Free Quantitative proteomics was performed and 91.2% of quantified proteins had a %CV <20% (2044/2241). Miniprep Assisted Proteomics can be performed in minutes, shows low variability, high recovery and proteome depth. This suggests a significant role for adventitious binding in developing new proteomics sample preparation techniques. MAP represents an efficient, ultra-low-cost alternative for sample preparation in a commercially obtainable device that costs ∼$0.50 (USD) per miniprep.
用于变性和溶解的去污剂可极大地改善用于蛋白质组学的自上而下的蛋白质完全酶解。然而,去污剂与许多蛋白酶不兼容,并且对 LC-MS/MS 极为不利。最近,由于其在消化和质谱分析之前去除去污剂和有害试剂的能力,基于过滤的方法得到了广泛的应用。我们假设,通过添加溶致盐,类似于 DNA 纯化,可以增强带负电荷的基于硅胶的过滤器上的非特异性蛋白质结合。我们试图利用这些相互作用,并研究低成本 DNA 纯化离心管过滤器“MiniPrep”是否可以有效地且可重复地结合蛋白质进行消化和 LC-MS/MS 分析。我们提出了一种新的方法,即 MiniPrep 辅助蛋白质组学(MAP),用于样品制备。我们使用 MAP 证明了蛋白质和全细胞裂解物的结合能力、性能、回收率和鉴定率。MAP 从 0.5-50μg 分析中回收了等效或更高的蛋白质产量,与商业捕获制剂相比具有可比性。通过 MAP 对裂解物的纳米 UHPLC-MS/MS 蛋白质组分析与现有方法有 99.3%的重叠,并且重复 MiniPrep 的重现性在 1% FDR 蛋白质水平上为 98.8%。进行了无标记定量蛋白质组学分析,91.2%的定量蛋白质的 %CV<20%(2044/2241)。MiniPrep 辅助蛋白质组学可以在几分钟内完成,显示出低变异性、高回收率和蛋白质组深度。这表明偶然结合在开发新的蛋白质组学样品制备技术方面具有重要作用。MAP 是一种高效、超低成本的替代方法,可在商业上可获得的设备中进行样品制备,该设备的成本约为 0.50 美元(USD)/分钟。