4.6 Article

An Electrochemical Approach for the Selective Detection of Cancer Metabolic Creatine Biomarker with Porous Nano-Formulated CMNO Materials Decorated Glassy Carbon Electrode

Journal

SENSORS
Volume 20, Issue 24, Pages -

Publisher

MDPI
DOI: 10.3390/s20247060

Keywords

porous nano-formulated CMNO nanomaterials; creatine sensor; wet-chemical technique; glassy carbon electrode; clinical research; health care field

Funding

  1. National Plan for Science, Technology and Innovation (MAARIFAH)-King Abdulaziz City for Science and Technol-the Kingdom of Saudi Arabia [14-BIO1978-03]

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The facile wet-chemical technique was used to prepare the low-dimensional nano-formulated porous mixed metal oxide nanomaterials (CuO.Mn2O3.NiO; CMNO NMs) in an alkaline medium at low temperature. Detailed structural, morphological, crystalline, and functional characterization of CMNO NMs were performed by X-ray photoelectron spectroscopy (XPS), powder X-ray diffraction (XRD), ultraviolet-visible spectroscopy (UV-vis), Fourier-transform infrared spectroscopy (FTIR), field emission scanning electron microscopy (FESEM), and energy-dispersive X-ray spectroscopy (EDS) analyses. An efficient and selective creatine (CA) sensor probe was fabricated by using CMNO NMs decorated onto glassy carbon electrode (GCE) as CMNO NMs/GCE by using Nafion adhesive (5% suspension in ethanol). The relation of current versus the concentration of CA was plotted to draw a calibration curve of the CMNO NMs/GCE sensor probe, which was found to have a very linear value (r(2) = 0.9995) over a large dynamic range (LDR: 0.1 nM similar to 0.1 mM) for selective CA detection. The slope of LDR by considering the active surface area of GCE (0.0316 cm(2)) was applied to estimate the sensor sensitivity (14.6308 mu A mu M-1 cm(-2)). Moreover, the detection limit (21.63 +/- 0.05 mu M) of CMNO MNs modified GCE was calculated from the signal/noise (S/N) ratio at 3. As a CA sensor probe, it exhibited long-term stability, good reproducibility, and fast response time in the detection of CA by electrochemical approach. Therefore, this research technique is introduced as a promising platform to develop an efficient sensor probe for cancer metabolic biomarker by using nano-formulated mixed metal oxides for biochemical as well as biomedical research for the safety of health care fields.

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