Literature DB >> 22545705

Molecular modeling assisted hapten design to produce broad selectivity antibodies for fluoroquinolone antibiotics.

Daniel G Pinacho1, Francisco Sánchez-Baeza, M-Pilar Marco.   

Abstract

Antibodies with a wide recognition profile of fluoroquinolone antibiotics have been produced based on chemical criteria, theoretical studies, and molecular modeling assisted hapten design. The immunizing hapten preserves the most important and characteristic epitopes of this antibiotic family. The studies have taken into consideration the zwitterionic character of most of the fluoroquinolones and the relative concentration of the different species in equilibrium at physiologic pH. The hapten is prepared in the form of a stable prehapten through a 5 step synthetic pathway. Immediately before conjugation, the immunizing hapten is obtained by removing the diphenylmethane protecting group. The specificity of the antibodies obtained is directed toward the common area defined by the fluorine atom at position 6 and the β-ketoacid moiety. The ELISA developed is able to recognize with very good detectability important fluoroquinolones used in the veterinary field such as ciprofloxacin (CPFX, IC(50), 0.35 μg L(-1)), enrofloxacin (ERFX, IC(50), 0.65 μg L(-1)), danofloxacin (DNFX, IC(50), 7.31 μg L(-1)), difloxacin (DFX, IC(50), 0.91 μg L(-1)), sarafloxacin (SRFX, IC(50), 0.96 μg L(-1)), norfloxacin (NRFX, IC(50), 0.78 μg L(-1)), ofloxacin (OFX, IC(50), 1.84 μg L(-1)), flumequine (Flume, IC(50), 3.91 μ gL(-1)), marbofloxacin (MBFX, IC(50), 4.30 μ gL(-1)), and oxolinic acid (OXO, IC(50), 23.53 μg L(-1)). The results presented here demonstrate that the antibody affinity is strongly affected by the presence of divalent cations, owing to their complexation with the fluoroquinolone molecules. Moreover, the outcome from the effect of the pH on the immunochemical assays suggests that the selectivity could be modulated with the pH due to the zwitterionic character of the fluoroquinolones and as a function of their different pK(a) values.

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Year:  2012        PMID: 22545705     DOI: 10.1021/ac300263m

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  5 in total

1.  Magnetic covalent organic frameworks with core-shell structure as sorbents for solid phase extraction of fluoroquinolones, and their quantitation by HPLC.

Authors:  Min Wang; Manjie Gao; Kailian Zhang; Lujun Wang; Wencheng Wang; Qifeng Fu; Zhining Xia; Die Gao
Journal:  Mikrochim Acta       Date:  2019-11-21       Impact factor: 5.833

2.  Fiber-optic array using molecularly imprinted microspheres for antibiotic analysis.

Authors:  Sergio Carrasco; Elena Benito-Peña; David R Walt; María C Moreno-Bondi
Journal:  Chem Sci       Date:  2015-03-25       Impact factor: 9.825

3.  Direct Quantitative Immunochemical Analysis of Autoinducer Peptide IV for Diagnosing and Stratifying Staphylococcus aureus Infections.

Authors:  Enrique-J Montagut; Gerardo Acosta; Fernando Albericio; Miriam Royo; Gerard Godoy-Tena; Alicia Lacoma; Cristina Prat; Juan-Pablo Salvador; María-Pilar Marco
Journal:  ACS Infect Dis       Date:  2022-02-17       Impact factor: 5.084

4.  An Immunochemical Approach to Detect the Quorum Sensing-Regulated Virulence Factor 2-Heptyl-4-Quinoline N-Oxide (HQNO) Produced by Pseudomonas aeruginosa Clinical Isolates.

Authors:  Enrique J Montagut; Juan Raya; M-Teresa Martin-Gomez; Lluïsa Vilaplana; Barbara Rodriguez-Urretavizcaya; M-Pilar Marco
Journal:  Microbiol Spectr       Date:  2022-07-25

5.  Electrochemical detection of fluoroquinolone antibiotics in milk using a magneto immunosensor.

Authors:  Daniel G Pinacho; Francisco Sánchez-Baeza; María-Isabel Pividori; María-Pilar Marco
Journal:  Sensors (Basel)       Date:  2014-08-28       Impact factor: 3.576

  5 in total

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