| Literature DB >> 29601532 |
Jen-Jie Chieh1, Wen-Chun Wei2, Shu-Hsien Liao3, Hsin-Hsein Chen4, Yen-Fu Lee5, Feng-Chun Lin6, Ming-Hsien Chiang7, Ming-Jang Chiu8,9,10,11, Herng-Er Horng12, Shieh-Yueh Yang13.
Abstract
An alternating-current magnetosusceptometer of antibody-functionalized magnetic nanoparticles (MNPs) was developed for immunomagnetic reduction (IMR). A high-sensitivity, high-critical-temperature superconducting quantum interference device was used in the magnetosusceptometer. Minute levels of biomarkers of early-stage neurodegeneration diseases were detectable in serum, but measuring each biomarker required approximately 4 h. Hence, an eight-channel platform was developed in this study to fit minimal screening requirements for Alzheimer's disease. Two consistent results were measured for three biomarkers, namely Aβ40, Aβ42, and tau protein, per human specimen. This paper presents the instrument configuration as well as critical characteristics, such as the low noise level variations among channels, a high signal-to-noise ratio, and the coefficient of variation for the biomarkers' IMR values. The instrument's ultrahigh sensitivity levels for the three biomarkers and the substantially shorter total measurement time in comparison with the previous single- and four-channels platforms were also demonstrated in this study. Thus, the eight-channel instrument may serve as a powerful tool for clinical high-throughput screening of Alzheimer's disease.Entities:
Keywords: immunoassay; magnetic nanoparticle; superconducting quantum interference device
Mesh:
Substances:
Year: 2018 PMID: 29601532 PMCID: PMC5948942 DOI: 10.3390/s18041043
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Configuration of the eight-channel ac magnetosusceptometer for MNPs.
Figure 2The eight channels of pick-up coils: (a) Assembly of one set of coils and (b) array of eight coil sets.
Figure 3Circuits for electric switches used in the eight-channel AC magnetosusceptometer for MNPs.
Figure 4The consistency study of channels with the measurement of noise levels (black bars) and biomarker-free mixture (gray bars) without the bioconjugation process.
Figure 5Relationship between the concentrations of (a) Aβ40; (b) Aβ42; and (c) tau protein and the measurement parameters of IMR and CV values in and among channels. IMR with a low detection limit for the various biomarkers is marked with red doted lines.
Fitted values of parameters A, B, φ, and γ from Equation (2), and coefficient of determination R2 for the relationships between IMR signals and biomarker concentrations.
| Parameter | R2 | |||||
|---|---|---|---|---|---|---|
| Biomarker | ||||||
| Aβ40 | 1.51 | 5.46 | 29.45 | 0.55 | 0.998 | |
| Aβ42 | 1.29 | 10.42 | 228561.4 | 0.23 | 0.999 | |
| Tau protein | 2.64 | 6.89 | 53.09 | 0.42 | 0.998 | |