Gene Electrotransfer via Conductivity‐Clamped Electric Field Focusing Pivots Sensori‐Motor DNA Therapeutics: “A Spoonful of Sugar Helps the Medicine Go Down”

Author:

Pinyon Jeremy L.12ORCID,von Jonquieres Georg1ORCID,Crawford Edward N.1ORCID,Abed Amr Al1ORCID,Power John M.1ORCID,Klugmann Matthias1ORCID,Browne Cherylea J.13ORCID,Housley David M.1ORCID,Wise Andrew K.45ORCID,Fallon James B.45ORCID,Shepherd Robert K.45ORCID,Lin John Y.6ORCID,McMahon Catherine7ORCID,McAlpine David7ORCID,Birman Catherine S.78910ORCID,Lai Waikong10ORCID,Enke Ya Lang11ORCID,Carter Paul M.11ORCID,Patrick James F.11,Gay Robert D.11ORCID,Marie Corinne1213ORCID,Scherman Daniel1214ORCID,Lovell Nigel H.1ORCID,Housley Gary D.1ORCID

Affiliation:

1. Translational Neuroscience Facility Department of Physiology School of Biomedical Sciences Graduate School of Biomedical Engineering Tyree Institute for Health Engineering (IHealthE) UNSW Sydney NSW 2052 Australia

2. Charles Perkins Centre School of Medical Sciences Faculty of Medicine and Health University of Sydney Sydney NSW 2006 Australia

3. Medical Sciences School of Science Western Sydney University Sydney NSW 2560 Australia

4. Bionics Institute 384–388 Albert Street East Melbourne VIC 3002 Australia

5. Medical Bionics Department of Otolaryngology University of Melbourne Melbourne VIC 3002 Australia

6. Tasmanian School of Medicine University of Tasmania Hobart TAS 7001 Australia

7. Faculty of Medicine and Health Sciences The Hearing Hub Macquarie University Sydney 2109 Australia

8. Faculty of Medicine and Health University of Sydney Sydney NSW 2006 Australia

9. Department of Otolaryngology Royal Prince Alfred Hospital Camperdown NSW 2050 Australia

10. NextSense Royal Institute of Deaf and Blind Children Gladesville NSW 2111 Australia

11. Cochlear Limited Macquarie University University Avenue Macquarie Park NSW 2109 Australia

12. CNRS, Inserm, UTCBS Université Paris Cité Paris F‐75006 France

13. Chimie ParisTech Université PSL Paris 75005 France

14. Fondation Maladies Rares 96 rue Didot Paris 75014 France

Abstract

AbstractViral vectors and lipofection‐based gene therapies have dispersion‐dependent transduction/transfection profiles that thwart precise targeting. The study describes the development of focused close‐field gene electrotransfer (GET) technology, refining spatial control of gene expression. Integration of fluidics for precise delivery of “naked” plasmid deoxyribonucleic acid (DNA) in sucrose carrier within the focused electric field enables negative biasing of near‐field conductivity (“conductivity‐clamping”–CC), increasing the efficiency of plasma membrane molecular translocation. This enables titratable gene delivery with unprecedently low charge transfer. The clinic‐ready bionics‐derived CC‐GET device achieved neurotrophin‐encoding miniplasmid DNA delivery to the cochlea to promote auditory nerve regeneration; validated in deafened guinea pig and cat models, leading to improved central auditory tuning with bionics‐based hearing. The performance of CC‐GET is evaluated in the brain, an organ problematic for pulsed electric field‐based plasmid DNA delivery, due to high required currents causing Joule‐heating and damaging electroporation. Here CC‐GET enables safe precision targeting of gene expression. In the guinea pig, reporter expression is enabled in physiologically critical brainstem regions, and in the striatum (globus pallidus region) delivery of a red‐shifted channelrhodopsin and a genetically‐encoded Ca2+ sensor, achieved photoactivated neuromodulation relevant to the treatment of Parkinson's Disease and other focal brain disorders.

Funder

Australian Research Council

Macquarie University

National Health and Medical Research Council

Publisher

Wiley

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