等压标记
蛋白质组学
多路复用
定量蛋白质组学
计算生物学
溶解
串联质量标签
质谱法
计算机科学
化学
单细胞分析
细胞
生物
色谱法
生物化学
电信
基因
作者
Aleksandra A. Petelski,Emily H Emmott,Andrew Leduc,R. Gray Huffman,Harrison Specht,David H. Perlman,Nikolai Slavov
出处
期刊:Nature Protocols
[Springer Nature]
日期:2021-10-29
卷期号:16 (12): 5398-5425
被引量:159
标识
DOI:10.1038/s41596-021-00616-z
摘要
Many biological systems are composed of diverse single cells. This diversity necessitates functional and molecular single-cell analysis. Single-cell protein analysis has long relied on affinity reagents, but emerging mass-spectrometry methods (either label-free or multiplexed) have enabled quantifying >1,000 proteins per cell while simultaneously increasing the specificity of protein quantification. Here we describe the Single Cell ProtEomics (SCoPE2) protocol, which uses an isobaric carrier to enhance peptide sequence identification. Single cells are isolated by FACS or CellenONE into multiwell plates and lysed by Minimal ProteOmic sample Preparation (mPOP), and their peptides labeled by isobaric mass tags (TMT or TMTpro) for multiplexed analysis. SCoPE2 affords a cost-effective single-cell protein quantification that can be fully automated using widely available equipment and scaled to thousands of single cells. SCoPE2 uses inexpensive reagents and is applicable to any sample that can be processed to a single-cell suspension. The SCoPE2 workflow allows analyzing ~200 single cells per 24 h using only standard commercial equipment. We emphasize experimental steps and benchmarks required for achieving quantitative protein analysis. Biological systems can now be studied at the single-cell level using mass spectrometry. In Single Cell ProtEomics (SCoPE2), a carrier sample is used to enhance peptide sequence identification with multiplexed analysis using isobaric mass tags.
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