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Microscale cephalosporin ion-selective amperometric/voltammetric sensors based on a micropipette-supported liquid/liquid interface: Multiple purposes of transmembrane studies and real-time determinations
The permeability of cephalosporins through cell membranes is crucial for their efficacy against gram-negative bacteria. To address this, a microsoft biphasic sensor utilizing the interface between two immiscible electrolyte solutions (ITIES) has been introduced for studying the ion transfer of cefot...
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Published in: | Sensors and actuators. B, Chemical Chemical, 2025-01, Vol.422, p.136651, Article 136651 |
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Main Authors: | , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites |
Online Access: | Get full text |
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Summary: | The permeability of cephalosporins through cell membranes is crucial for their efficacy against gram-negative bacteria. To address this, a microsoft biphasic sensor utilizing the interface between two immiscible electrolyte solutions (ITIES) has been introduced for studying the ion transfer of cefotiam (CTM), ceftazidime (CAZ) and cefepime (CPM). The typical voltammograms of cephalosporin ion transfer can be further used to determine the formal ion transfer potentials (∆owφA′), ion transfer Gibbs free energies (∆owGA′), effective hydrophilicity (logPi), geometry of micro-ITIES, diffusion coefficient (Dw) and ion transfer rate constant (k0). In addition, the partitioning of CTM+, CAZ+, and CPM+ in two phases at different pH values was revealed by the corresponding ion partition diagrams (IPDs). The IPDs can further elucidate the mechanism of cephalosporin ion transfer across the ITIES at different pH values. Finally, the determination of CTM+, CAZ+ and CPM+ was achieved via real-time chronoamperometry. An excellent linear range for cephalosporin ions with a satisfactory limit of detection was obtained. The findings show the superb selectivity and anti-interferent ability of micro-ITIES sensors toward cephalosporins. The constructed micro-ITIES sensors for cephalosporin could contribute to medicinal design, single microorganism metabolism analysis, clinical diagnosis, and food safety inspection.
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•A fast, cost-efficient cephalosporins micro-ITIES sensor is developed.•This sensor can be used to evaluate the membrane permeability of cephalosporins.•The different mechanisms of cephalosporins transfer have been characterized.•The geometry of the micro-ITIES sensors has been evaluated.•The sensor has excellent selectivity in organic environment. |
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ISSN: | 0925-4005 |
DOI: | 10.1016/j.snb.2024.136651 |