| Literature DB >> 21614193 |
Yongmei Yin1, Ya Cao, Yuanyuan Xu, Genxi Li.
Abstract
Tumor markers are substances, usually proteins, produced by the body in response to cancer growth, or by the cancer tissue itself. They can be detected in blood, urine, or tissue samples, and the discovery and detection of tumor markers may provide earlier diagnosis of cancer and improved therapeutic intervention. Colorimetric immunoassays for tumor marker detection have attracted considerable attention, due to their simplicity and high efficiency. The traditionally used colorimetric immunoassays for the detection of tumor markers are based on enzyme-linked immunosorbent assays, and the great achievement of nanotechnology has further opened opportunities for the development of such kind of immunoassays. This paper will summarize recent advances in the field of colorimetric immunoassays for detecting tumor markers, which is aimed to provide an overview in this field, as well as experimental guidance for the learner.Entities:
Keywords: colorimetric immunoassay; nanomaterials; tumor markers
Mesh:
Substances:
Year: 2010 PMID: 21614193 PMCID: PMC3100837 DOI: 10.3390/ijms11125077
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Some tumor markers currently in use.
| AFP (Alpha-fetoprotein) | Liver, germ cell cancer of ovaries or testes | Blood | [ |
| CA 15-3 (Cancer antigen 15-3) | Breast | Blood | [ |
| CA-125 (Cancer antigen 125) | Ovarian | Blood | [ |
| CEA (Carcinoembryonic antigen) | Colorectal, breast, thyroid | Blood | [ |
| Estrogen receptors | Breast | Tissue | [ |
| hCG (Human chorionic gonadotropin) | Testicular and trophoblastic disease | Blood, urine | [ |
| Her-2/neu | Breast | Tissue | [ |
| Progesterone receptors | Breast | Tissue | [ |
| PSA (Prostate specific antigen) | Prostate | Blood | [ |
Examples of immunoassays for tumor markers analysis.
| PSA | Fluorescence | Fluorophore-based bio-barcode amplification method | 30 nM | [ |
| PSA | Microcantilever | Microcantilever | 2 nM | [ |
| PSA | Electrochemistry | Using gold nanoparticle film electrodes and multienzyme-particle amplification | 5 fM | [ |
| PSA | Electrochemistry | Carbon nanotube amplification strategies | 40 fM | [ |
| PSA | Surface-Enhanced Raman Scattering | Immunoassay based on Surface-Enhanced Raman Scattering and immunogold labels | 30 fM | [ |
| PSA | Colorimetry | Homogenous growth of gold nanocrystals | 10 fM | [ |
| AFP | Fluorescence | Fluorescence quenching signal of gold nanoparticles | 0.17 nM | [ |
| AFP | Mass spectrometry | Mass spectrometry signal amplification using small-molecule tagged gold microparticles | 1 nM | [ |
| AFP | Electrochemistry | Amperometric enzyme immunosensor based on gold nanoparticles and multi-walled carbon nanotube composite membranes | 0.6 pM | [ |
| AFP | Chemiluminescence | Multilayers enzyme-coated carbon nanotubes as label | 0.1 pM | [ |
| AFP | Colorimetry | Cascade enzyme-linked immunosorbent assay | 0.1 pM | [ |
| AFP | Colorimetry | DNAzyme functionalized nano-probes | 1.4 pM | [ |
| CEA, AFP | Colorimetry | Colorimetric multiplexed immunoassay based on gold nanoparticles | 0.02 ng/mL; 0.1 pM | [ |
| CEA | Chemiluminescence | Flow-through multianalyte system with substrate zone-resolved technique | 0.6 ng/mL | [ |
| CEA | Electrochemistry | Layer-by-layer assembly of gold nanoparticles-multi-walled carbon nanotubes-thionine multilayer films | 0.01 ng/mL | [ |
| CEA | Surface-Enhanced Raman Scattering | Surface-Enhanced Raman Scattering of hollow gold nanospheres | 0.01 ng/mL | [ |
| CEA | Colorimetry | Enzyme-labeled gold nanoparticle probes | 0.012 ng/mL | [ |
Figure 1.Scheme of the colorimetric multiplexed immunoassay for sequential detection of tumor markers, CEA and AFP. Reprinted with permission from Ref. [45]. Copyright 2009 Elsevier.
Figure 2.Colorimetric detection of CEA and AFP antigens. Only in the presence of antigens which are cognate with the antibodies loaded on the surfaces of MPs and Au-NPs, can the immunocomplexes be formed, and the characteristic blue and yellow colors of catalytic products be observed. Reprinted with permission from Ref. [45]. Copyright 2009 Elsevier.