Chinese Journal of Chromatography ›› 2024, Vol. 42 ›› Issue (6): 508-523.DOI: 10.3724/SP.J.1123.2024.01011
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XIE Baoxuan, LYU Yang, LIU Zhen*()
Received:
2024-01-10
Online:
2024-06-08
Published:
2024-06-07
Supported by:
Fig. 5 Schematic illustration of the reverse microemulsion-confined epitope-oriented surface imprinting and cladding (ROSIC) strategy[36] a. template preparation: grafting the epitope with a hydrophobic chain; b. preparation procedure of core/shell cladding molecularly imprinted polymer (cMIP) nanoparticles for the recognition of specific proteins and peptides.
Fig. 8 Schematic illustration of dual-modal ratiometric immunoassay[80] a. analyte extraction and labeling; b. dual-modal ratiometric immunoassay detection.
Application | Materials | Method | Templates | Samples | Separation and detection modes | Ref. |
---|---|---|---|---|---|---|
Chromatog- raphy | MIP filled column | precipitation poly- merization | polymyxin E | muscle samples including beef, pork and chicken | LC-MS/MS | [ |
MIP monolithic column | bulk polymerization | MMF | plasma | HPLC | [ | |
GO-MIP | bulk polymerization | DA | human serum and DA hydrochloride injection | CEC | [ | |
SPE | OFX-imprinted Fe3O4@MIP | RAFT polymerization | OFX | human urine | magnetic separation | [ |
HD-MMIP | surface imprinting | TC | milk sample | magnetic separation | [ | |
Fe3O4@rGO@MIP | surface imprinting | BSA | fetal bovine serum | magnetic separation | [ | |
BSA-MMIP | surface imprinting | BSA | protein solutions | magnetic separation | [ | |
BHb-MMIP | surface imprinting | BHb | bovine serum | magnetic separation | [ | |
MIPMS | direct incorporation method | salbutamol sulfate | serum | centrifuge | [ | |
SiO2-PQDs-MIPs | surface imprinting | Trf | urine and serum | fluorescence spectro- photometer | [ | |
AMP-imprinted MSN | DTD-OMI | AMP | urine | micellar electrokinetic chromatography | [ | |
BHb-MiM | surface imprinting | BHb | protein solutions | membrane separation | [ | |
MIM | bulk polymerization | BHb | bovine serum | membrane separation | [ | |
Disease diagnosis | TNF-α MIP | bulk polymerization | TNF-α | - | electrochemical biosensor | [ |
NFluidEx | electro-polymeriza- tion | IgG/IgM | saliva and blood | electrochemical biosensor | [ | |
NSE-imprinted Ag/PATP@SiO2 NPs and NSE-imprinted AuNP SAM-coated glass substrates | surface imprinting | NSE epitope | human serum | Raman spectrometer | [ | |
AFP/Fuc-imprinted labeling SERS tag and AFP-imprinted substrate | surface imprinting | AFP epitope and Fuc | human serum | Raman spectrometer | [ | |
AFP/A2G2S2-imprinted Au/Ag NP and AFP-imprinted substrate | surface imprinting | AFP epitope and A2G2S2 | human serum | Raman spectrometer and LDI-MS | [ | |
Bioimaging | GlcA-imprinted MIP | precipitation polymerization | GlcA | keratinocytes and human skin specimen | confocal microscopy | [ |
MIPNANA-QDs MIPGlcA-QD | photopolymerization | GlcA and NANA | keratinocytes | confocal microscopy | [ | |
SA/Fuc/Man-imprinted QD | surface imprinting | SA, Fuc and Man | cells | confocal microscopy | [ | |
SA-imprinted SERS nanotags | surface imprinting | SA | liver cancer cells and tissues | Raman spectroscopy | [ | |
Anti-pY-cMIP SERS nanotags | surface imprinting | phosphotyrosine | liver cancer cells and tissues | Raman spectroscopy | [ | |
anti-hVEGF-MIP | surface imprinting | hVEGF epitope | zebrafish embryos | confocal microscopy | [ | |
Proteomics | Mono-MIP | bulk polymerization | KacA | cell lysates | nano-LC-MS/MS | [ |
pyrophosphate-imprinted MMSMs | DTD-OMI | pyrophosphate | digested nonfat milk and human serum | MALDI-TOF MS | [ | |
Lys-MIP | surface imprinting | Lys | chicken egg white | MALDI-TOF MS | [ | |
cryogel MIP | bulk polymerization | human serum | human serum | nano-LC-MS/MS | [ | |
MIP | dull template method | silica nanoparti- cles | urine and HeLa-CCM | LC-MS | [ |
Table 1 Application of MIT in separation and analysis of complex biological samples
Application | Materials | Method | Templates | Samples | Separation and detection modes | Ref. |
---|---|---|---|---|---|---|
Chromatog- raphy | MIP filled column | precipitation poly- merization | polymyxin E | muscle samples including beef, pork and chicken | LC-MS/MS | [ |
MIP monolithic column | bulk polymerization | MMF | plasma | HPLC | [ | |
GO-MIP | bulk polymerization | DA | human serum and DA hydrochloride injection | CEC | [ | |
SPE | OFX-imprinted Fe3O4@MIP | RAFT polymerization | OFX | human urine | magnetic separation | [ |
HD-MMIP | surface imprinting | TC | milk sample | magnetic separation | [ | |
Fe3O4@rGO@MIP | surface imprinting | BSA | fetal bovine serum | magnetic separation | [ | |
BSA-MMIP | surface imprinting | BSA | protein solutions | magnetic separation | [ | |
BHb-MMIP | surface imprinting | BHb | bovine serum | magnetic separation | [ | |
MIPMS | direct incorporation method | salbutamol sulfate | serum | centrifuge | [ | |
SiO2-PQDs-MIPs | surface imprinting | Trf | urine and serum | fluorescence spectro- photometer | [ | |
AMP-imprinted MSN | DTD-OMI | AMP | urine | micellar electrokinetic chromatography | [ | |
BHb-MiM | surface imprinting | BHb | protein solutions | membrane separation | [ | |
MIM | bulk polymerization | BHb | bovine serum | membrane separation | [ | |
Disease diagnosis | TNF-α MIP | bulk polymerization | TNF-α | - | electrochemical biosensor | [ |
NFluidEx | electro-polymeriza- tion | IgG/IgM | saliva and blood | electrochemical biosensor | [ | |
NSE-imprinted Ag/PATP@SiO2 NPs and NSE-imprinted AuNP SAM-coated glass substrates | surface imprinting | NSE epitope | human serum | Raman spectrometer | [ | |
AFP/Fuc-imprinted labeling SERS tag and AFP-imprinted substrate | surface imprinting | AFP epitope and Fuc | human serum | Raman spectrometer | [ | |
AFP/A2G2S2-imprinted Au/Ag NP and AFP-imprinted substrate | surface imprinting | AFP epitope and A2G2S2 | human serum | Raman spectrometer and LDI-MS | [ | |
Bioimaging | GlcA-imprinted MIP | precipitation polymerization | GlcA | keratinocytes and human skin specimen | confocal microscopy | [ |
MIPNANA-QDs MIPGlcA-QD | photopolymerization | GlcA and NANA | keratinocytes | confocal microscopy | [ | |
SA/Fuc/Man-imprinted QD | surface imprinting | SA, Fuc and Man | cells | confocal microscopy | [ | |
SA-imprinted SERS nanotags | surface imprinting | SA | liver cancer cells and tissues | Raman spectroscopy | [ | |
Anti-pY-cMIP SERS nanotags | surface imprinting | phosphotyrosine | liver cancer cells and tissues | Raman spectroscopy | [ | |
anti-hVEGF-MIP | surface imprinting | hVEGF epitope | zebrafish embryos | confocal microscopy | [ | |
Proteomics | Mono-MIP | bulk polymerization | KacA | cell lysates | nano-LC-MS/MS | [ |
pyrophosphate-imprinted MMSMs | DTD-OMI | pyrophosphate | digested nonfat milk and human serum | MALDI-TOF MS | [ | |
Lys-MIP | surface imprinting | Lys | chicken egg white | MALDI-TOF MS | [ | |
cryogel MIP | bulk polymerization | human serum | human serum | nano-LC-MS/MS | [ | |
MIP | dull template method | silica nanoparti- cles | urine and HeLa-CCM | LC-MS | [ |
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