Issue 54, 2024, Issue in Progress

Desorption of pharmaceutical hydrochlorides from transition metal oxide nanoparticles – investigation by capillary electrophoresis

Abstract

The binding affinity of pharmaceutical hydrochlorides onto transition metal oxide nanoparticles (TMONPs) was investigated through a consecutive process of adsorption and desorption. Mexiletine (MEX) was chosen as a model pharmaceutical hydrochloride that bound onto TMONPs' surface through electrostatic interactions and coordination bonding. Response surface methodology was applied for their optimal separation by capillary electrophoresis to achieve accurate quantitation. Linear and quadratic regressions were applied to model peak resolution and migration times. The response surface methodology was next applied to investigate the maximum desorption percentages of mexiletine (MEX) from the surface of TiO2 and Co3O4 nanoparticles. ANOVA indicated a positive correlation between the MEX desorption results with pH, metformin (MET) competitive desorption agent concentration, Na2HPO4 concentration (hence ionic strength), and Na2S2O5 reducing agent concentration. The MEX desorption increased from TiO2 (46 ± 1%) to Co3O4 (63 ± 1%), suggesting a stronger binding interaction between MEX and TiO2 nanoparticles. TiO2 exhibited the order of pH > [MET] > [Na2HPO4] > [Na2S2O5]; Co3O4 exhibited the order [Na2HPO4] > pH > [MET] > [Na2S2O5]. This novel finding demonstrates the potential of TMONPs for use as efficient adsorbents to remove pharmaceutical compounds that accidently enter environmental water sources, with feasible regeneration.

Graphical abstract: Desorption of pharmaceutical hydrochlorides from transition metal oxide nanoparticles – investigation by capillary electrophoresis

Article information

Article type
Paper
Submitted
02 Oct 2024
Accepted
03 Dec 2024
First published
19 Dec 2024
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2024,14, 39890-39901

Desorption of pharmaceutical hydrochlorides from transition metal oxide nanoparticles – investigation by capillary electrophoresis

E. T. Elmorsi and E. P. C. Lai, RSC Adv., 2024, 14, 39890 DOI: 10.1039/D4RA07081J

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