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Roy, A., Bersellini Farinotti, A., Arbring Sjöström, T., Abrahamsson, T., Cherian, D., Karaday, M., . . . Simon, D. (2023). Electrophoretic Delivery of Clinically Approved Anesthetic Drug for Chronic Pain Therapy. Advanced Therapeutics, 6(7), Article ID 2300083.
Open this publication in new window or tab >>Electrophoretic Delivery of Clinically Approved Anesthetic Drug for Chronic Pain Therapy
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2023 (English)In: Advanced Therapeutics, E-ISSN 2366-3987, Vol. 6, no 7, article id 2300083Article in journal (Refereed) Published
Abstract [en]

Despite a range of available pain therapies, most patients report so-called “breakthrough pain.” Coupled with global issues like opioid abuse, there is a clear need for advanced therapies and technologies for safe and effective pain management. Here the authors demonstrate a candidate for such an advanced therapy: precise and fluid-flow-free electrophoretic delivery via organic electronic ion pumps (OEIPs) of the commonly used anesthetic drug bupivacaine. Bupivacaine is delivered to dorsal root ganglion (DRG) neurons in vitro. DRG neurons are a good proxy for pain studies as they are responsible for relaying ascending sensory signals from nociceptors (pain receptors) in the peripheral nervous system to the central nervous system. Capillary based OEIPs are used due to their probe-like and free-standing form factor, ideal for interfacing with cells. By delivering bupivacaine with the OEIP and recording dose versus response (Ca2+ imaging), it is observed that only cells close to the OEIP outlet (≤75 µm) are affected (“anaesthetized”) and at concentrations up to 10s of thousands of times lower than with bulk/bolus delivery. These results demonstrate the first effective OEIP deliveryof a clinically approved and widely used analgesic pharmaceutical, and thus are a major translational milestone for this technology.

Place, publisher, year, edition, pages
John Wiley & Sons, Ltd, 2023
Keywords
anesthetic, bupivacaine, calcium imaging, drug delivery, electrophoretic, ion exchange membrane
National Category
Anesthesiology and Intensive Care
Identifiers
urn:nbn:se:liu:diva-193517 (URN)10.1002/adtp.202300083 (DOI)000977943800001 ()2-s2.0-85154059805 (Scopus ID)
Note

Funding agencies: This work was supported by the Swedish Foundation for Strategic Research, the Knut and Alice Wallenberg Foundation, the Swedish Research Council, the European Research Council (AdG 2018 Magnus Berggren, 834677 and CoG 2019 Camilla Svensson, 866075), and Vinnova. Additional support was provided by the Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linköping University (Faculty Grant SFO-Mat-LiU no. 2009-00971).

Available from: 2023-05-03 Created: 2023-05-03 Last updated: 2024-03-26Bibliographically approved
Cherian, D., Roy, A., Farinotti, A. B., Abrahamsson, T., Arbring Sjöström, T., Tybrandt, K., . . . Simon, D. (2023). Flexible Organic Electronic Ion Pump Fabricated Using Inkjet Printing and Microfabrication for Precision In Vitro Delivery of Bupivacaine. Advanced Healthcare Materials, 12(24), Article ID 2300550.
Open this publication in new window or tab >>Flexible Organic Electronic Ion Pump Fabricated Using Inkjet Printing and Microfabrication for Precision In Vitro Delivery of Bupivacaine
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2023 (English)In: Advanced Healthcare Materials, ISSN 2192-2640, E-ISSN 2192-2659, Vol. 12, no 24, article id 2300550Article in journal (Refereed) Published
Abstract [en]

The 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 micro processing techniques. Here, we report the development of an inkjet printable formulation of polyelectrolyte, 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 substrates. Both i-AHPG and the OEIP devices are characterized, exhibiting favorable iontronic characteristics of charge selectivity and ability to transport aromatic compounds. Further, the applicability of these technologies is demonstrated by 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.

Place, publisher, year, edition, pages
John Wiley & Sons, 2023
Keywords
bioelectronics, flexible devices, inkjet printing, polyelectrolytes, polyimide
National Category
Materials Chemistry
Identifiers
urn:nbn:se:liu:diva-193520 (URN)10.1002/adhm.202300550 (DOI)001010551300001 ()37069480 (PubMedID)2-s2.0-85161982885 (Scopus ID)
Note

Funding: Swedish Foundation for Strategic Research; Knut and Alice Wallenberg Foundation; Swedish Research Council; European Research Council [834677]; Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linkoping University (Faculty Grant SFO-Mat-LiU) [2009-00971]; Vinnova

Available from: 2023-05-03 Created: 2023-05-03 Last updated: 2025-06-03Bibliographically approved
Parizkova, B., Antoniadi, I., Poxson, D., Karady, M., Simon, D. T., Zatloukal, M., . . . Ljung, K. (2022). iP & OEIP - Cytokinin Micro Application Modulates Root Development with High Spatial Resolution. Advanced Materials Technologies, 7(10), Article ID 2101664.
Open this publication in new window or tab >>iP & OEIP - Cytokinin Micro Application Modulates Root Development with High Spatial Resolution
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2022 (English)In: Advanced Materials Technologies, E-ISSN 2365-709X, Vol. 7, no 10, article id 2101664Article in journal (Refereed) Published
Abstract [en]

State-of-the-art technology based on organic electronics can be used as a flow-free delivery method for organic substances with high spatial resolution. Such highly targeted drug micro applications can be used in plant research for the regulation of physiological processes on tissue and cellular levels. Here, for the first time, an organic electronic ion pump (OEIP) is reported that can transport an isoprenoid-type cytokinin, N-6-isopentenyladenine (iP), to intact plants. Cytokinins (CKs) are plant hormones involved in many essential physiological processes, including primary root (PR) and lateral root (LR) development. Using the Arabidopsis thaliana root as a model system, efficient iP delivery is demonstrated with a biological output - cytokinin-related PR and LR growth inhibition. The spatial resolution of iP delivery, defined for the first time for an organic compound, is shown to be less than 1 mm, exclusively affecting the OEIP-targeted LR. Results from the application of the high-resolution OIEP treatment method confirm previously published findings showing that the influence of CKs may vary at different stages of LR development. Thus, OEIP-based technologies offer a novel, electronically controlled method for phytohormone delivery that could contribute to unraveling cytokinin functions during different developmental processes with high specificity.

Place, publisher, year, edition, pages
Wiley, 2022
Keywords
arabidopsis; cytokinin; organic bioelectronics; hormone delivery; lateral root; root development; spatial resolution
National Category
Plant Biotechnology
Identifiers
urn:nbn:se:liu:diva-185293 (URN)10.1002/admt.202101664 (DOI)000794182300001 ()
Note

Funding Agencies|Knut and Alice Wallenberg (KAW) Foundation ShapeSystems project [KAW 2012.0050]; Ministry of Education, Youth and Sports of the Czech Republic [CZ.02.2.69/0.0/0.0/16_027/0008482]; Kempe Foundation [JCK-1910]; ERDF project by the Ministry of Education, Youth and Sports of the Czech Republic [CZ.02.1.01/0.0/0.0/16_019/0000827, CZ.02.1.01/0.0/0.0/16_019/0000738]; Czech Science Foundation [19-00973S]; VR (Vetenskapsradet); Vinnova; KAW

Available from: 2022-05-25 Created: 2022-05-25 Last updated: 2024-01-10Bibliographically approved
Arbring Sjöström, T., Ivanov, A. I., Bernard, C., Tybrandt, K., Poxson, D., Simon, D. T. & Berggren, M. (2021). Design and Operation of Hybrid Microfluidic Iontronic Probes for Regulated Drug Delivery. Paper presented at 2021/01/18. Advanced Materials Technologies, 6(2), Article ID 2001006.
Open this publication in new window or tab >>Design and Operation of Hybrid Microfluidic Iontronic Probes for Regulated Drug Delivery
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2021 (English)In: Advanced Materials Technologies, E-ISSN 2365-709X, Vol. 6, no 2, article id 2001006Article in journal (Refereed) Published
Abstract [en]

Highly controlled drug delivery devices play an increasingly important role in the development of new neuroengineering tools. Stringent - and sometimes contradicting - demands are placed on such devices, ranging from robustness in freestanding devices, to overall device miniaturization, while maintaining precise spatiotemporal control of delivery with high chemical specificity and high on/off ratio. Here, design principles of a hybrid microfluidic iontronic probe that uses flow for long-range pressure-driven transport in combination with an iontronic tip that provides electronically fine-tuned pressure-free delivery are explored. Employing a computational model, the effects of decoupling the drug reservoir by exchanging a large passive reservoir with a smaller microfluidic system are reported. The transition at the microfluidic-iontronic interface is found to require an expanded ion exchange membrane inlet in combination with a constant fluidic flow, to allow a broad range of device operation, including low source concentrations and high delivery currents. Complementary to these findings, the free-standing hybrid probe monitored in real time by an external sensor is demonstrated. From these computational and experimental results, key design principles for iontronic devices are outlined that seek to use the efficient transport enabled by microfluidics, and further, key observations of hybrid microfluidic iontronic probes are explained.

Place, publisher, year, edition, pages
Hoboken, New Jersey: John Wiley & Sons, 2021
Keywords
bioelectronics, drug delivery, iontronics, microfluidics, organic electronics
National Category
Medical Materials
Identifiers
urn:nbn:se:liu:diva-172686 (URN)10.1002/admt.202001006 (DOI)000607538700001 ()
Conference
2021/01/18
Funder
Swedish Foundation for Strategic Research Knut and Alice Wallenberg FoundationVinnovaSwedish Research CouncilEU, European Research Council, 2018
Note

Additional Funding agencies: FLAG‐ERA. Grant Number: JTC2017; EPIGRAPH. Grant Number: ANR‐17‐GRF2‐0001; Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linköping University. Grant Number: 2009‐00971; A*MIDEX ION. Grant Number: 2IONXXID/REID/ID17HRU208

Available from: 2021-01-18 Created: 2021-01-18 Last updated: 2025-02-09Bibliographically approved
Jakešová, M., Arbring, T., Đerek, V., Poxson, D., Berggren, M., Glowacki, E. & Simon, D. T. (2019). Wireless organic electronic ion pumps driven by photovoltaics. npj Flexible Electronics, 3(1), 14-14
Open this publication in new window or tab >>Wireless organic electronic ion pumps driven by photovoltaics
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2019 (English)In: npj Flexible Electronics, ISSN 2397-4621, Vol. 3, no 1, p. 14-14Article in journal (Refereed) Published
Abstract [en]

The organic electronic ion pump (OEIP) is an emerging bioelectronic technology for on-demand and local delivery of pharmacologically active species, especially targeting alkali ions, and neurotransmitters. While electrical control is advantageous for providing precise spatial, temporal, and quantitative delivery, traditionally, it necessitates wiring. This complicates implantation. Herein, we demonstrate integration of an OEIP with a photovoltaic driver on a flexible carrier, which can be addressed by red light within the tissue transparency window. Organic thin-film bilayer photovoltaic pixels are arranged in series and/or vertical tandem to provide the 2.5–4.5 V necessary for operating the high-resistance electrophoretic ion pumps. We demonstrate light-stimulated transport of cations, ranging in size from protons to acetylcholine. The device, laminated on top of the skin, can easily be driven with a red LED emitting through a 1.5-cm-thick finger. The end result of our work is a thin and flexible integrated wireless device platform.

Place, publisher, year, edition, pages
Nature Publishing Group, 2019
National Category
Materials Chemistry
Identifiers
urn:nbn:se:liu:diva-160118 (URN)10.1038/s41528-019-0060-6 (DOI)000619054200014 ()
Available from: 2019-09-05 Created: 2019-09-05 Last updated: 2024-11-14Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-4246-8723

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