Flexible Organic Electronic Ion Pump Fabricated Using Inkjet Printing and Microfabrication for Precision In Vitro Delivery of Bupivacaine

Author:

Cherian Dennis1ORCID,Roy Arghyamalya1ORCID,Bersellini Farinotti Alex2ORCID,Abrahamsson Tobias1ORCID,Arbring Sjöström Theresia1ORCID,Tybrandt Klas1ORCID,Nilsson David3ORCID,Berggren Magnus1ORCID,Svensson Camilla I.2ORCID,Poxson David J.1ORCID,Simon Daniel T.1ORCID

Affiliation:

1. Laboratory of Organic Electronics Department of Science and Technology Linköping University Norrköping 60174 Sweden

2. Department of Physiology and Pharmacology Karolinska Institutet Stockholm 17177 Sweden

3. Unit of Printed Electronics RISE Research Institutes of Sweden Norrköping 60221 Sweden

Abstract

AbstractThe organic electronic ion pump (OEIP) is an on‐demand electrophoretic drug delivery device, that via electronic to ionic signal conversion enables drug delivery without additional pressure or volume changes. The fundamental component of OEIPs is their polyelectrolyte membranes which are shaped into ionic channels that conduct and deliver ionic drugs, with high spatiotemporal resolution. The patterning of these membranes is essential in OEIP devices and is typically achieved using laborious microprocessing techniques. Here, the development of an inkjet printable formulation of polyelectrolyte is reported, based on a custom anionically functionalized hyperbranched polyglycerol (i‐AHPG). This polyelectrolyte ink greatly simplifies the fabrication process and is used in the production of free‐standing OEIPs on flexible polyimide (PI) substrates. Both i‐AHPG and the OEIP devices are characterized, exhibiting favorable iontronic characteristics of charge selectivity and the ability to transport aromatic compounds. Further, the applicability of these technologies is demonstrated by the transport and delivery of the pharmaceutical compound bupivacaine to dorsal root ganglion cells with high spatial precision and effective nerve blocking, highlighting the applicability of these technologies for biomedical scenarios.

Funder

Stiftelsen för Strategisk Forskning

Knut och Alice Wallenbergs Stiftelse

Vetenskapsrådet

European Research Council

Vinnova

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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