Chinese Journal of Chromatography ›› 2021, Vol. 39 ›› Issue (2): 142-151.DOI: 10.3724/SP.J.1123.2020.08030
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QIN Shaojie, BAI Yu*(), LIU Huwei
Received:
2020-08-31
Online:
2021-02-08
Published:
2021-01-14
Contact:
BAI Yu
Supported by:
CLC Number:
QIN Shaojie, BAI Yu, LIU Huwei. Methods and applications of single-cell proteomics analysis based on mass spectrometry[J]. Chinese Journal of Chromatography, 2021, 39(2): 142-151.
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URL: https://www.chrom-china.com/EN/10.3724/SP.J.1123.2020.08030
Fig. 1 Single cell protein studies based on capillary electrophoresis (CE)[19,22,24,28] a. workflow of single embryo cell proteomic study through microdissection and bottom-up routine; b. workflow of label free microsampling single cell proteomics; c. combination of CE with RP fractionation to enhance peptides separation; d. successive subcellular microsampling from cytoplasm to nucleus.
Fig. 2 Single cell protein studies based on liquid chromatography[29,31,35,39] a. the pipeline of single cell proteomics on single embryo blastomeres; b. workflow of single cell ProtEomics by mass spectrometry (SCoPE-MS), including sonication lysis followed by digestion and tandem mass tag (TMT) labeling; c. conceptual diagram of integrated capillary-assisted integrated proteome analysis device-1 (iPAD-1); d. workflow of nanodroplet processing in one pot for trace samples single cell proteomic analysis platform.
Separation mean | Method | Throughput (cell numbers/ run) | Identified protein number1) | Sensitivity | Application |
---|---|---|---|---|---|
CE based | microdissection[ | 1 | 1630 (label)2) | 25 amol | differentiation process and subcellular asymme- |
macrosampling[ | 1 | 341 | 700 zmol | try of Xenopus embryo, zebrafish embryos | |
RP pre-fractionation[ | 1 | 141 | 260 zmol | mouse hippocampal neurons proteome | |
LC based | microdissection[ | 1 | 1500 | - | Xenopus embryo differentiation process and |
microdissection with iTRAQ strategy[ | 8 | ~4000 (label) | - | early development | |
SCoPE[ | ~190 | 767 (label) | zmol | differentiation of mouse embryonic stem cells | |
SCoPE2[ | >2000 | >1000 (label) | zmol | differentiation mechanism of homogeneous monocytes | |
OAD chip[ | 1 | 51 | - | Hela cell proteome | |
iPAD-1[ | 1 | 126 | 1.7 zmol | histone profiling in Hela cell cycle | |
nanoPOTs[ | 72 | 1400 (label) | amol | classification of Epithelial cells and immune cells in mice | |
enhanced nanoPOTs[ | 72 | 362 | <amol | Hela cell proteome | |
Direct detection | AP-MALDI[ | ~104-105 | 220 peptides | - | mice brain tissue imaging |
based | SIMS[ | ~103-104 | <10 | - | three-dimensional imaging of cells |
mass cytometry[ | ~105-106 | 40 | zmol | cellular signaling network changes | |
mass cytometry imaging[ | ~104-105 | 40 | zmol | breast cancer subtyping |
Table 1 Representative single cell proteomics research methods
Separation mean | Method | Throughput (cell numbers/ run) | Identified protein number1) | Sensitivity | Application |
---|---|---|---|---|---|
CE based | microdissection[ | 1 | 1630 (label)2) | 25 amol | differentiation process and subcellular asymme- |
macrosampling[ | 1 | 341 | 700 zmol | try of Xenopus embryo, zebrafish embryos | |
RP pre-fractionation[ | 1 | 141 | 260 zmol | mouse hippocampal neurons proteome | |
LC based | microdissection[ | 1 | 1500 | - | Xenopus embryo differentiation process and |
microdissection with iTRAQ strategy[ | 8 | ~4000 (label) | - | early development | |
SCoPE[ | ~190 | 767 (label) | zmol | differentiation of mouse embryonic stem cells | |
SCoPE2[ | >2000 | >1000 (label) | zmol | differentiation mechanism of homogeneous monocytes | |
OAD chip[ | 1 | 51 | - | Hela cell proteome | |
iPAD-1[ | 1 | 126 | 1.7 zmol | histone profiling in Hela cell cycle | |
nanoPOTs[ | 72 | 1400 (label) | amol | classification of Epithelial cells and immune cells in mice | |
enhanced nanoPOTs[ | 72 | 362 | <amol | Hela cell proteome | |
Direct detection | AP-MALDI[ | ~104-105 | 220 peptides | - | mice brain tissue imaging |
based | SIMS[ | ~103-104 | <10 | - | three-dimensional imaging of cells |
mass cytometry[ | ~105-106 | 40 | zmol | cellular signaling network changes | |
mass cytometry imaging[ | ~104-105 | 40 | zmol | breast cancer subtyping |
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