4.8 Article

Bioelectronic Recordings of Cardiomyocytes with Accumulation Mode Electrolyte Gated Organic Field Effect Transistors

Journal

BIOSENSORS & BIOELECTRONICS
Volume 150, Issue -, Pages -

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2019.111844

Keywords

Bioelectronics; Organic field effect transistors; Organic electronics; Cardiac cells; Organic semiconducting blend

Funding

  1. BEST Postdoctoral Programme - European Commission under Horizon 2020's Marie Curie Sklodowska-Curie Actions COFUND scheme [GA 712754]
  2. Severo Ochoa programme of the Spanish Ministry of Science and Competitiveness [SEV-2014-0425, SEV-2015-0496]
  3. BORGES project (Marie Curie Sklodowska European Training Network (MSCA-ITN-ETN)) [813863]
  4. ICREA Academia award from the Generalitat de Catalunya
  5. Agencia Estatal de Investigacidn (Nanoelectrophys project) [TEC2016-79156-P]
  6. DGI (Spain) [FANCY CTQ2016-80030-R]
  7. Generalitat de Catalunya [2017-SGR-918, 2017 SGR 1306]
  8. Networking Research Center on Bioengineering, Biomaterials, and Nanomedicine (CIBERBBN)
  9. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme [StG-2014-640525_REGMAMKID]
  10. Spanish Ministry of Economy and Competitiveness/FEDER [SAF2015-72617-EXP, SAF2017-89782]
  11. CERCA programme [2017 SGR 1306]
  12. Asociacion Espanola contra el Cancer [LABAE16006]
  13. CardioCel (TerCel, Instituto de Salud Carlos III)
  14. MINECO
  15. Marie Curie Actions (MSCA) [813863] Funding Source: Marie Curie Actions (MSCA)

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Organic electronic materials offer an untapped potential for novel tools for low-invasive electrophysiological recording and stimulation devices. Such materials combine semiconducting properties with tailored surface chemistry, elastic mechanical properties and chemical stability in water. In this work, we investigate solution processed Electrolyte Gated Organic Field Effect Transistors (EGOFETs) based on a small molecule semiconductor. We demonstrate that EGOFETs based on a blend of soluble organic semiconductor 2,8-Difluoro-5,11-bis(triethylsilylethynyl)anthradithiophene (diF-TES-ADT) combined with an insulating polymer show excellent sensitivity and long-term recording under electrophysiological applications. Our devices can stably record the extracellular potential of human pluripotent stem cell derived cardiomyocyte cells (hPSCs-CMs) for several weeks. In addition, cytotoxicity tests of pharmaceutical drugs, such as Norepinephrine and Verapamil was achieved with excellent sensitivity. This work demonstrates that organic transistors based on organic blends are excellent bioelectronics transducer for extracellular electrical recording of excitable cells and tissues thus providing a valid alternative to electrochemical transistors.

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