| Literature DB >> 27782067 |
Muhammad Azhar Hayat Nawaz1, Sajid Rauf2, Gaelle Catanante3, Mian Hasnain Nawaz1, Gilvanda Nunes4, Jean Louis Marty5, Akhtar Hayat6.
Abstract
Thin films of organic moiety functionalized carbon nanotubes (CNTs) from a very well-dispersed aqueous solution were designed on a screen printed transducer surface through a single step directed assembly methodology. Very high density of CNTs was obtained on the screen printed electrode surface, with the formation of a thin and uniform layer on transducer substrate. Functionalized CNTs were characterized by X-ray diffraction spectroscopy (XRD), Fourier transform infrared spectroscopy (FTIR), thermogravimetric analysis (TGA) and Brunauer-Emmett- Teller (BET) surface area analyzer methodologies, while CNT coated screen printed transducer platform was analyzed by scanning electron microscopy (SEM), atomic force microscopy (AFM), cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). The proposed methodology makes use of a minimum amount of CNTs and toxic solvents, and is successfully demonstrated to form thin films over macroscopic areas of screen printed carbon transducer surface. The CNT coated screen printed transducer surface was integrated in the fabrication of electrochemical aptasensors for breast cancer biomarker analysis. This CNT coated platform can be applied to immobilize enzymes, antibodies and DNA in the construction of biosensor for a broad spectrum of applications.Entities:
Keywords: cancer diagnosis; carbon nanotubes; electrochemical aptasensor; high density; thin films
Mesh:
Substances:
Year: 2016 PMID: 27782067 PMCID: PMC5087439 DOI: 10.3390/s16101651
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Fourier transform infrared (FTIR) spectra of pure multi-walled carbon nanotubes (MWCNTs) (a) and functionalized MWCNTs (b), insets shows the dispersion of both in water.
Figure 2Scanning electron microscope (SEM) images of bare-screen printed carbon electrode (SPCE) (a) MWNT-SPCE (b), aptamer immobilized MWCNT-SPCE (c) mucine–aptamer MWCNT-SPCE; and (d) Scale bar: 2.0 μm (a–d).
Figure 3Tapping mode atomic force microscopy (AFM) images of bare-SPCE (a); MWNT-SPCE (b); aptamer immobilized MWCNT-SPCE (c); and mucine–aptamer MWCNT-SPCE (d); scale bar: 1.0 μm (a–d).
Figure 4(A) cyclic voltammograms of 2.0 mM [Fe(CN)6]4-/3-probe at scan rate of 100 mV/s and (B) Nyquist plots for (a) bare SPCE, (b) SPCE/MWCNT modified electrode, (c) SPCE/MWCNT/N-(3-dimethylaminopropyle)-N-ethyle-carbodiimide (EDC) activated modified electrode, (d) SPCE/MWCNT/EDC activated/Apt modified electrode, and (e) SPCE/MWCNT/EDC activated/Apt/Mucine modified electrode.
Figure 5Schematic presentation of thin film assembly of carbon nanotubes on screen printed interface for electrochemical aptasensing applications.
Figure 6The calibration curve corresponding to the detection of mucine based on changes of electron-transfer resistance (Ret), which presented as ∆ ratio (A) Nyquist plots of mucine-aptamer modified SPCEs with different concentrations of mucine U/ml (a) 0.1 (b) 0.25 (c) 0.5 (d) 1 (e) 1.25 (f) 1.5 and (g) 2 (B).
Analytical performance of the proposed aptasensor with the previously reported electrochemical sensors for detection of MUC1.
| Sr. No | Method Principal | LOD | Linear Range | Ref. |
|---|---|---|---|---|
| 1 | “Signal-on” electrochemical aptasensor | 0.33 nM | 1–20 nM | [ |
| 2 | Immobilization of redox-labeled hairpin DNA aptamers on gold | 50 nM | 1.50 µM | [ |
| 3 | Aptasensor based on enzyme–gold nanoparticle dual label | 2.2 nM | 8.8–353.3 nM | [ |
| 4 | Electrochemical immunoassay based on aptamer–protein interaction | 0.62 ppb | 1–12 ppb | [ |
| 5 | Sandwich format based magnetic beads coupling screen-printed arrays | 0.07 nM | 0–0.28 nM | [ |
| 6 | Impedimetric aptasensor based on gold nanoparticles | 0.1 nM | 0.5–10 nM | [ |
| 7 | Insertion approach electrochemical aptasensor based on exonuclease-assisted target recycling | 4 pM | 10 pM–1 μM | [ |
| 8 | dual signal amplification of poly(o-phenylenediamine) carrier and functionalized carbon nanotube tracing tag | 1 pM | 1–100 nM | [ |
| 9 | Carbon nanotube thin film assembly on Screen Printed Interface | 0.02 U/mL | 0.1–2 U/mL | Present work |
Mucine (MUC1).