Redox Flow Iontophoresis for Continuous Drug Delivery

Author:

Naegele Tobias E.1ORCID,Gurke Johannes2ORCID,Rognin Etienne3,Willis‐Fox Niamh34ORCID,Dennis Anthony5ORCID,Tao Xudong1ORCID,Daly Ronan3ORCID,Keyser Ulrich F.6ORCID,Malliaras George G.1ORCID

Affiliation:

1. Electrical Engineering Division Department of Engineering University of Cambridge Cambridge CB3 0FA UK

2. Institute of Chemistry University of Potsdam 14476 Potsdam Germany

3. Institute for Manufacturing Department of Engineering University of Cambridge Cambridge CB3 0FS UK

4. Department of Materials University of Manchester Manchester M1 7HL UK

5. Department of Engineering University of Cambridge Cambridge CB2 1PZ UK

6. Cavendish Laboratory University of Cambridge Cambridge CB3 0HE UK

Abstract

AbstractDrug delivery into the brain and spinal cord is fundamentally limited by the blood‐brain barrier which impedes the use of the vast majority of drugs. Implants based on iontophoresis use an applied voltage to deliver charged drug molecules, allowing solvent‐free delivery directly into the site of interest and overcoming issues associated with systemic exposure to the drug. However, during continuous delivery over long periods, electrochemical reactions occur at the electrodes leading to corrosive gas formation. Here, the concept of redox flow iontophoresis is presented, where a redox mediator solution is used to control electrode reactions and sustain continuous delivery for theoretically unlimited duration. As a proof‐of‐concept, a redox flow iontophoresis‐based brain implant that can continuously deliver the cancer drug doxorubicin at stable rates exceeding 2 nmol min−1 is demonstrated. This new concept enables the continuous delivery of various potent drugs into the brain and spinal cord and therefore has the potential to improve treatment options for various diseases.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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