Photo‐Chemical Stimulation of Neurons with Organic Semiconductors

Author:

Savva Achilleas12ORCID,Hama Adel1,Herrera‐López Gabriel1,Schmidt Tony3ORCID,Migliaccio Ludovico4,Steiner Nadia1,Kawan Malak1,Fiumelli Hubert1,Magistretti Pierre J.1,McCulloch Iain5,Baran Derya5,Gasparini Nicola6ORCID,Schindl Rainer3ORCID,Głowacki Eric D.4ORCID,Inal Sahika1ORCID

Affiliation:

1. Biological and Environmental Science and Engineering King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

2. Department of Chemical Engineering and Biotechnology University of Cambridge Cambridge CB30AS UK

3. Gottfried Schatz Research Center Chair of Biophysics Medical University of Graz Neue Stiftingtalstraße 6 Graz 8010 Austria

4. Bioelectronics Materials and Devices Laboratory Central European Institute of Technology Brno University of Technology Purkyňova 123 Brno 61200 Czech Republic

5. Physical Science and Engineering (PSE) KAUST Solar Center (KSC) King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

6. Department of Chemistry and Centre for Processable Electronics Imperial College London London W12 0BZ UK

Abstract

AbstractRecent advances in light‐responsive materials enabled the development of devices that can wirelessly activate tissue with light. Here it is shown that solution‐processed organic heterojunctions can stimulate the activity of primary neurons at low intensities of light via photochemical reactions. The p‐type semiconducting polymer PDCBT and the n‐type semiconducting small molecule ITIC (a non‐fullerene acceptor) are coated on glass supports, forming a pn junction with high photosensitivity. Patch clamp measurements show that low‐intensity white light is converted into a cue that triggers action potentials in primary cortical neurons. The study shows that neat organic semiconducting pn bilayers can exchange photogenerated charges with oxygen and other chemical compounds in cell culture conditions. Through several controlled experimental conditions, photo‐capacitive, photo‐thermal, and direct hydrogen peroxide effects on neural function are excluded, with photochemical delivery being the possible mechanism. The profound advantages of low‐intensity photo‐chemical intervention with neuron electrophysiology pave the way for developing wireless light‐based therapy based on emerging organic semiconductors.

Funder

King Abdullah University of Science and Technology

Horizon 2020 Framework Programme

H2020 European Research Council

H2020 Marie Skłodowska-Curie Actions

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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