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MXtrodes: MXene-infused bioelectronic interfaces for multiscale electrophysiology and stimulation

View ORCID ProfileNicolette Driscoll, Brian Erickson, Brendan B. Murphy, Andrew G. Richardson, Gregory Robbins, Nicholas V. Apollo, Tyler Mathis, Kanit Hantanasirisakul, Puneet Bagga, Sarah E. Gullbrand, Matthew Sergison, Ravinder Reddy, John A. Wolf, H. Isaac Chen, Timothy H. Lucas, Timothy Dillingham, View ORCID ProfileKathryn A. Davis, Yury Gogotsi, John D. Medaglia, Flavia Vitale
doi: https://doi.org/10.1101/2021.03.01.433237
Nicolette Driscoll
1Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
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  • ORCID record for Nicolette Driscoll
Brian Erickson
4Department of Psychology, Drexel University, Philadelphia, PA, USA
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Brendan B. Murphy
1Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
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Andrew G. Richardson
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
5Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA
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Gregory Robbins
6Department of Physical Medicine and Rehabilitation, University of Pennsylvania, PA, USA
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Nicholas V. Apollo
1Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
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Tyler Mathis
7Department of Materials Science and Engineering, Drexel University, Philadelphia, PA, USA
8A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA, USA
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Kanit Hantanasirisakul
7Department of Materials Science and Engineering, Drexel University, Philadelphia, PA, USA
8A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA, USA
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Puneet Bagga
9Department of Radiology, Center for Magnetic Resonance and Optical Imaging, University of Pennsylvania, Philadelphia, PA, USA
10Diagnostic Imaging, St Jude Children’s Research Hospital, Memphis, TN, USA
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Sarah E. Gullbrand
11Translational Musculoskeletal Research Center, Corporal Michael J. Crescenz VA Medical Center, Philadelphia, PA, USA
12McKay Orthopaedic Research Laboratory, Department of Orthopaedic Surgery, University of Pennsylvania, Philadelphia, PA, USA
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Matthew Sergison
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
5Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA
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Ravinder Reddy
9Department of Radiology, Center for Magnetic Resonance and Optical Imaging, University of Pennsylvania, Philadelphia, PA, USA
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John A. Wolf
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
5Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA
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H. Isaac Chen
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
5Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA
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Timothy H. Lucas
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
5Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA
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Timothy Dillingham
6Department of Physical Medicine and Rehabilitation, University of Pennsylvania, PA, USA
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Kathryn A. Davis
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
13Department of Neurology, University of Pennsylvania, Philadelphia, PA, USA
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Yury Gogotsi
7Department of Materials Science and Engineering, Drexel University, Philadelphia, PA, USA
8A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA, USA
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John D. Medaglia
4Department of Psychology, Drexel University, Philadelphia, PA, USA
13Department of Neurology, University of Pennsylvania, Philadelphia, PA, USA
14Department of Neurology, Drexel University, Philadelphia, PA, USA
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Flavia Vitale
1Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA
2Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, PA, USA
3Center for Neurotrauma, Neurodegeneration, and Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, Philadelphia, PA, USA
6Department of Physical Medicine and Rehabilitation, University of Pennsylvania, PA, USA
13Department of Neurology, University of Pennsylvania, Philadelphia, PA, USA
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  • For correspondence: vitalef@pennmedicine.upenn.edu
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Abstract

Soft bioelectronic interfaces for mapping and modulating excitable networks at high resolution and at large scale can enable paradigm-shifting diagnostics, monitoring, and treatment strategies. Yet, current technologies largely rely on materials and fabrication schemes that are expensive, do not scale, and critically limit the maximum attainable resolution and coverage. Solution processing is a cost-effective manufacturing alternative, but biocompatible conductive inks matching the performance of conventional metals are lacking. Here, we introduce MXtrodes, a novel class of soft, high-resolution, large-scale bioelectronic interfaces enabled by Ti3C2 MXene and scalable solution processing. We show that the electrochemical properties of MXtrodes exceed those of conventional materials, and do not require conductive gels when used in epidermal electronics. Furthermore, we validate MXtrodes in a number of applications ranging from mapping large scale neuromuscular networks in humans to delivering cortical microstimulation in small animal models. Finally, we demonstrate that MXtrodes are compatible with standard clinical neuroimaging modalities.

Competing Interest Statement

F.V., N.D., N.V.A., and Y.G. are co-inventors on patent applications PCT/US2018/051084 and PCT/US2020/055147 related to the MXtrode technology. The remaining authors declare no competing interests.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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MXtrodes: MXene-infused bioelectronic interfaces for multiscale electrophysiology and stimulation
Nicolette Driscoll, Brian Erickson, Brendan B. Murphy, Andrew G. Richardson, Gregory Robbins, Nicholas V. Apollo, Tyler Mathis, Kanit Hantanasirisakul, Puneet Bagga, Sarah E. Gullbrand, Matthew Sergison, Ravinder Reddy, John A. Wolf, H. Isaac Chen, Timothy H. Lucas, Timothy Dillingham, Kathryn A. Davis, Yury Gogotsi, John D. Medaglia, Flavia Vitale
bioRxiv 2021.03.01.433237; doi: https://doi.org/10.1101/2021.03.01.433237
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MXtrodes: MXene-infused bioelectronic interfaces for multiscale electrophysiology and stimulation
Nicolette Driscoll, Brian Erickson, Brendan B. Murphy, Andrew G. Richardson, Gregory Robbins, Nicholas V. Apollo, Tyler Mathis, Kanit Hantanasirisakul, Puneet Bagga, Sarah E. Gullbrand, Matthew Sergison, Ravinder Reddy, John A. Wolf, H. Isaac Chen, Timothy H. Lucas, Timothy Dillingham, Kathryn A. Davis, Yury Gogotsi, John D. Medaglia, Flavia Vitale
bioRxiv 2021.03.01.433237; doi: https://doi.org/10.1101/2021.03.01.433237

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