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Electrochemically Enhanced Delivery of Pemetrexed from Electroactive Hydrogels.
Au-Yong, Sophie; Firlak, Melike; Draper, Emily R; Municoy, Sofia; Ashton, Mark D; Akien, Geoffrey R; Halcovitch, Nathan R; Baldock, Sara J; Martin-Hirsch, Pierre; Desimone, Martin F; Hardy, John G.
Affiliation
  • Au-Yong S; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Firlak M; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Draper ER; Department of Chemistry, Gebze Technical University, Gebze 41400, Turkey.
  • Municoy S; School of Chemistry, Joseph Black Building, University of Glasgow, Glasgow G12 8QQ, UK.
  • Ashton MD; Instituto de Química y Metabolismo del Fármaco (IQUIMEFA), Facultad de Farmacia y Bioquímica, Consejo Nacional de Investigaciones, Científicas y Técnicas (CONICET), Universidad de Buenos Aires, Junín 956, Piso 3° (1113), Buenos Aires 1113, Argentina.
  • Akien GR; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Halcovitch NR; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Baldock SJ; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Martin-Hirsch P; Department of Chemistry, Faraday Building, Lancaster University, Lancaster LA1 4YB, UK.
  • Desimone MF; Lancashire Teaching Hospitals NHS Trust, Royal Preston Hospital, Sharoe Green Lane, Preston PR2 9HT, UK.
  • Hardy JG; Instituto de Química y Metabolismo del Fármaco (IQUIMEFA), Facultad de Farmacia y Bioquímica, Consejo Nacional de Investigaciones, Científicas y Técnicas (CONICET), Universidad de Buenos Aires, Junín 956, Piso 3° (1113), Buenos Aires 1113, Argentina.
Polymers (Basel) ; 14(22)2022 Nov 16.
Article de En | MEDLINE | ID: mdl-36433079
ABSTRACT
Electroactive hydrogels based on derivatives of polyethyleneglycol (PEG), chitosan and polypyrrole were prepared via a combination of photopolymerization and oxidative chemical polymerization, and optionally doped with anions (e.g., lignin, drugs, etc.). The products were analyzed with a variety of techniques, including FT-IR, UV-Vis, 1H NMR (solution state), 13C NMR (solid state), XRD, TGA, SEM, swelling ratios and rheology. The conductive gels swell ca. 8 times less than the non-conductive gels due to the presence of the interpenetrating network (IPN) of polypyrrole and lignin. A rheological study showed that the non-conductive gels are soft (G' 0.35 kPa, G″ 0.02 kPa) with properties analogous to brain tissue, whereas the conductive gels are significantly stronger (G' 30 kPa, G″ 19 kPa) analogous to breast tissue due to the presence of the IPN of polypyrrole and lignin. The potential of these biomaterials to be used for biomedical applications was validated in vitro by cell culture studies (assessing adhesion and proliferation of fibroblasts) and drug delivery studies (electrochemically loading the FDA-approved chemotherapeutic pemetrexed and measuring passive and stimulated release); indeed, the application of electrical stimulus enhanced the release of PEM from gels by ca. 10-15% relative to the passive release control experiment for each application of electrical stimulation over a short period analogous to the duration of stimulation applied for electrochemotherapy. It is foreseeable that such materials could be integrated in electrochemotherapeutic medical devices, e.g., electrode arrays or plates currently used in the clinic.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Polymers (Basel) Année: 2022 Type de document: Article Pays d'affiliation: Royaume-Uni

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Polymers (Basel) Année: 2022 Type de document: Article Pays d'affiliation: Royaume-Uni