Printed Silk Microelectrode Arrays for Electrophysiological Recording and Controlled Drug Delivery

Author:

Adly Nouran12ORCID,Teshima Tetsuhiko F.12ORCID,Hassani Hossein3ORCID,Boustani George Al1,Weiß Lennart J.K.1ORCID,Cheng Gordon4ORCID,Alexander Joe2,Wolfrum Bernhard12ORCID

Affiliation:

1. Neuroelectronics – Munich Institute of Biomedical Engineering Department of Electrical Engineering TUM School of Computation Information and Technology Technical University of Munich Hans‐Piloty‐Strasse 1 85748 Garching Germany

2. Medical & Health Informatics Laboratories NTT Research Incorporated 940 Stewart Dr Sunnyvale CA 94085 USA

3. Neaspec—Attocube Systems AG Eglfinger Weg 2 85540 Haar Germany

4. Chair for Cognitive Systems Department of Electrical Engineering TUM School of Computation Information and Technology Technical University of Munich Arcisstrasse 21 80333 Munich Germany

Abstract

AbstractThe use of soft and flexible bioelectronic interfaces can enhance the quality for recording cells’ electrical activity by ensuring a continuous and intimate contact with the smooth, curving surfaces found in the physiological environment. This work develops soft microelectrode arrays (MEAs) made of silk fibroin (SF) films for recording interfaces that can also serve as a drug delivery system. Inkjet printing is used as a tool to deposit the substrate, conductive electrode, and insulator, as well as a drug‐delivery nanocomposite film. This approach is highly versatile, as shown in the fabrication of carbon microelectrodes, sandwiched between a silk substrate and a silk insulator. The technique permits the development of thin‐film devices that can be employed for in vitro extracellular recordings of HL‐1 cell action potentials. The tuning of SF by applying an electrical stimulus to produce a permeable layer that can be used in on‐demand drug delivery systems is also demonstrated. The multifunctional MEA developed here can pave the way for in vitro drug screening by applying time‐resolved and localized chemical stimuli.

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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