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Biocompatibility and Long-Term Stability of DNA-Based Organic Mixed Conductors for Bioelectronics

Research output: Contribution to journalArticlepeer-review

Abstract

In the field of bioelectronics, designing novel organic mixed ionic-electronic conductors (OMIECs) is crucial to overcome the limitations in terms of biocompatibility and long-term stability. Polymeric OMIECs are reported for their potential applications in implantable devices to record and stimulate biological signals. Deoxyribonucleic acid (DNA) templated PEDOT and polypyrrole are synthesized via oxidative chemical polymerization. The biocompatibility and long-term chemical stability of conductive composites PEDOT:DNA and PPy:DNA are evaluated and compared to PEDOT:PSS. To examine in vitro cytotoxicity, NIH 3T3 cells are cultured on thin-films of PEDOT:PSS and DNA-based biocomposites. The visual determination of cell morphology and adhesion are carried out by fluorescent optical microscopy and atomic force microscopy (AFM) imaging. The acute and long-term cell viability is performed by using flow cytometry. After 96 h of incubation, the cells maintain over 80% viability, retaining their morphology and adhesion properties similar to control cells on plastic or glass samples. This indicates that all tested samples demonstrate high biocompatibility. The material stability of PEDOT:DNA and PPy:DNA is investigated by integrating the materials into organic electrochemical transistors (OECTs). The results confirm an efficient ion-to-electron transduction in OECTs and long-term chemical stability after storing the materials for up to 5 years.
Original languageEnglish
Article number2500412
Number of pages12
JournalAdvanced Materials Interfaces
Volume12
Issue number20
Early online date04 Jun 2025
DOIs
Publication statusPublished - 27 Oct 2025

Fields of science

  • 301207 Pharmaceutical chemistry
  • 210004 Nanomaterials
  • 104019 Polymer sciences
  • 104018 Polymer chemistry
  • 104002 Analytical chemistry
  • 104 Chemistry
  • 104016 Photochemistry
  • 204002 Chemical reaction engineering
  • 301904 Cancer research
  • 301305 Medical chemistry
  • 104015 Organic chemistry
  • 104014 Surface chemistry
  • 104011 Materials chemistry
  • 104010 Macromolecular chemistry
  • 107002 Bionics
  • 302009 Chemotherapy
  • 304007 Tissue engineering
  • 104008 Catalysis
  • 106002 Biochemistry
  • 104005 Electrochemistry
  • 103011 Semiconductor physics
  • 104017 Physical chemistry
  • 103040 Photonics

JKU Focus areas

  • Sustainable Development: Responsible Technologies and Management

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