| Literature DB >> 30028867 |
Sujit Kumar Verma1, Anja Karin Albrecht2, Verena Siebecke2, Gerd Klöck2, Tatiana A Kolesnikova1, Sebastian Springer1.
Abstract
To detect and study diseases, research and clinical laboratories must quantify specific biomarkers in the plasma and urine of patients with precision, sensitivity, and cost-effectiveness. Newly developed techniques, such as particle-based immunoassays, must be validated in these terms against standard methods such as enzyme-linked immunosorbent assays (ELISAs). Here, we compare the performance of assays that use hollow polyelectrolyte microcapsules with assays based on solid plastic beads, and with standard microplate immunoassays. The polyelectrolyte microcapsules detect the disease biomarker beta-2 microglobulin with a fifty-fold increase in sensitivity than polystyrene (PS) beads. For sequence-specific nucleic acid detection, the oligonucleotide-coated microcapsules exhibit a two-fold lower increase in sensitivity over PS beads. The microcapsules also detect the presence of a monoclonal antibody in hybridoma supernatant at a fifty-six-fold increase in sensitivity compared to a microplate assay. Overall, polyelectrolyte microcapsule-based assays are more sensitive for the detection of protein and nucleic acid analytes than PS beads and microplate assays, and they are viable alternatives as a platform for the rapid quantitative detection of analytes at very low concentrations.Entities:
Mesh:
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Year: 2018 PMID: 30028867 PMCID: PMC6054379 DOI: 10.1371/journal.pone.0201009
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Analytical performance of BBM.1 detection using microcapsule and microplate for BBM.1 hybridoma: Best fit values were obtained with a four-parameter fit equation.
LoB, LoD, and LoQ were determined as described in the materials and methods.
| BBM.1 in PBS | BBM.1 in RPMI | BBM.1 in Hybridoma | ||||
|---|---|---|---|---|---|---|
| Microcapsules | Microplates | Microcapsules | Microplates | Microcapsules | Microplates | |
| 0.41 | 8.67 | 0.13 | 0.91 | 21.4 | 9.28 | |
| 108 | 90.02 | 103 | 95.6 | 94.9 | 96.3 | |
| 1.05 | 1.88 | 1.15 | 1.33 | 0.83 | 1.71 | |
| 0.99 | 0.92 | 0.99 | 0.97 | 0.95 | 0.95 | |
| 21 ng | 13 ng | 5 ng | 21 ng | 0.9 nL | 124 nL | |
| 26 ng | 24 ng | 7 ng | 54 ng | 2.8 nL | 158 nL | |
| 69 ng | 125 ng | 38 ng | 118 ng | 13.6 nL | 882 nL | |
| 2x10-3 to 3x101 μg mL-1 | 1.9x10-2 to 1x101 μg mL-1 | 1x10-3 to 3x101 pg mL-1 | 5x10-4 to 1x101 pg mL-1 | 7x10-3 to | 1x10-2 to 1x102 μL | |
Analytical performance of hβ2m and oligonucleotide detection using microcapsule and PS beads: Best fit values were obtained with a four-parameter fit equation.
Limit of blank (LoB), limit of detection (LoD) and limit of quantification (LoQ) were determined as described in the materials and methods.
| hβ2m in PBS | Oligo3 in PBS | |||
|---|---|---|---|---|
| Microcapsules | PS beads | Microcapsules | PS beads | |
| 4.01 | 2.38 | 4.14 | -0.24 | |
| 92.9 | 97.1 | 92.9 | 94.8 | |
| 1.38 | 6.44 | 6.23 | 1.75 | |
| 0.97 | 0.99 | 0.98 | 0.97 | |
| 32 fg mL-1 | 3.8 ng mL-1 | 7.5 X 10−9 M | 4.8 X 10−9 M | |
| 99 fg mL-1 | 5.0 ng mL-1 | 1 X 10−8 M | 5.9 X 10−9 M | |
| 2.1 pg mL-1 | 8.7 ng mL-1 | 12.4 X 10−9 M | 16.5 X 10−9 M | |
| 10−3 to 105 pg mL-1 | 10−4 to 106 pg mL-1 | 10−10 to 10−6 M | 10−10 to 10−6 M | |