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Molecularly Imprinted Polymer Embedded BODIPY Probes for the Fluorescence Detection of Antibiotics

  • Antibiotics are widely used to combat bacterial infections in humans and animals and their use has greatly improved modern healthcare. However, frequent and reckless use of antibiotics can cause antibiotic resistance in bacteria and pollute ecosystems. Therefore, the rapid and reliable detection of antibiotics is crucial. Fluorescence sensing is particularly attractive because of its high sensitivity and low limits of detection. Fluorescence assays can be carried out in a variety of platforms such as strips and particles among others. Recently, core-shell molecularly imprinted polymers (MIPs) have emerged as a promising sensor platform for (bio)chemical detection due to their low-cost, high stability, reusability, high affinity and selectivity.MIPs in combination with fluorescent molecular probes are gorgeous, since the covalently embedded probe allows for direct indication of a rebound template and provides a wealth of information about the binding state of a MIP through theAntibiotics are widely used to combat bacterial infections in humans and animals and their use has greatly improved modern healthcare. However, frequent and reckless use of antibiotics can cause antibiotic resistance in bacteria and pollute ecosystems. Therefore, the rapid and reliable detection of antibiotics is crucial. Fluorescence sensing is particularly attractive because of its high sensitivity and low limits of detection. Fluorescence assays can be carried out in a variety of platforms such as strips and particles among others. Recently, core-shell molecularly imprinted polymers (MIPs) have emerged as a promising sensor platform for (bio)chemical detection due to their low-cost, high stability, reusability, high affinity and selectivity.MIPs in combination with fluorescent molecular probes are gorgeous, since the covalently embedded probe allows for direct indication of a rebound template and provides a wealth of information about the binding state of a MIP through the multitude of fluorescence parameters accessible, facilitating MIP optimization. In the present work, we have developed a novel series of fluorescent functional monomers, which consist of a fluorophore with a π-conjugated urea recognition site and one or two polymerizable units. The fluorescent monomers are covalently embedded into the MIP matrix to generate fluorescence changes upon template binding (Figure 1). Preliminary titrations of the dye monomer with the analytes show a blue shift of the absorption spectrum and a decrease in the fluorescence intensity which confirms the formation of hydrogen bonds between the urea and the carboxylate group of the antibiotic. Compared with the non-imprinted polymers, the MIP shells on core carrier particles have demonstrated an effective imprinting by showing a higher fluorescence response upon analyte binding.zeige mehrzeige weniger

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Metadaten
Autor*innen:Yijuan SunORCiD
Koautor*innen:Kornelia GawlitzaORCiD, Virginia Valderrey, Knut RurackORCiD
Dokumenttyp:Posterpräsentation
Veröffentlichungsform:Präsentation
Sprache:Englisch
Jahr der Erstveröffentlichung:2021
Organisationseinheit der BAM:1 Analytische Chemie; Referenzmaterialien
1 Analytische Chemie; Referenzmaterialien / 1.9 Chemische und optische Sensorik
DDC-Klassifikation:Naturwissenschaften und Mathematik / Chemie / Analytische Chemie
Freie Schlagwörter:Antibiotics; Fluorescent dye; Molecularly Imprinted Polymer
Themenfelder/Aktivitätsfelder der BAM:Umwelt
Umwelt / Sensorik
Veranstaltung:EUROPT(R)ODE2021
Veranstaltungsort:Warsaw, Poland
Beginndatum der Veranstaltung:28.11.2021
Enddatum der Veranstaltung:01.12.2021
Verfügbarkeit des Dokuments:Datei im Netzwerk der BAM verfügbar ("Closed Access")
Datum der Freischaltung:03.12.2021
Referierte Publikation:Nein
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