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Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces

Silicon-based planar microelectronics is a powerful tool for scalably recording and modulating neural activity at high spatiotemporal resolution, but it remains challenging to target neural structures in three dimensions (3D). We present a method for directly fabricating 3D arrays of tissue-penetrat...

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Autores principales: Wang, Pingyu, Wu, Eric G., Uluşan, Hasan, Phillips, A.J., Rose Hays, Madeline, Kling, Alexandra, Zhao, Eric T., Madugula, Sasidhar, Vilkhu, Ramandeep S., Vasireddy, Praful Krishna, Hier- lemann, Andreas, Hong, Guosong, Chichilnisky, E.J., Melosh, Nicholas A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10312573/
https://www.ncbi.nlm.nih.gov/pubmed/37398164
http://dx.doi.org/10.1101/2023.05.30.542925
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author Wang, Pingyu
Wu, Eric G.
Uluşan, Hasan
Phillips, A.J.
Rose Hays, Madeline
Kling, Alexandra
Zhao, Eric T.
Madugula, Sasidhar
Vilkhu, Ramandeep S.
Vasireddy, Praful Krishna
Hier- lemann, Andreas
Hong, Guosong
Chichilnisky, E.J.
Melosh, Nicholas A.
author_facet Wang, Pingyu
Wu, Eric G.
Uluşan, Hasan
Phillips, A.J.
Rose Hays, Madeline
Kling, Alexandra
Zhao, Eric T.
Madugula, Sasidhar
Vilkhu, Ramandeep S.
Vasireddy, Praful Krishna
Hier- lemann, Andreas
Hong, Guosong
Chichilnisky, E.J.
Melosh, Nicholas A.
author_sort Wang, Pingyu
collection PubMed
description Silicon-based planar microelectronics is a powerful tool for scalably recording and modulating neural activity at high spatiotemporal resolution, but it remains challenging to target neural structures in three dimensions (3D). We present a method for directly fabricating 3D arrays of tissue-penetrating microelectrodes onto silicon microelectronics. Leveraging a high-resolution 3D printing technology based on 2-photon polymerization and scalable microfabrication processes, we fabricated arrays of 6,600 microelectrodes 10–130 μm tall and at 35-μm pitch onto a planar silicon-based microelectrode array. The process enables customizable electrode shape, height and positioning for precise targeting of neuron populations distributed in 3D. As a proof of concept, we addressed the challenge of specifically targeting retinal ganglion cell (RGC) somas when interfacing with the retina. The array was customized for insertion into the retina and recording from somas while avoiding the axon layer. We verified locations of the microelectrodes with confocal microscopy and recorded high-resolution spontaneous RGC activity at cellular resolution. This revealed strong somatic and dendritic components with little axon contribution, unlike recordings with planar microelectrode arrays. The technology could be a versatile solution for interfacing silicon microelectronics with neural structures and modulating neural activity at large scale with single-cell resolution.
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spelling pubmed-103125732023-07-01 Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces Wang, Pingyu Wu, Eric G. Uluşan, Hasan Phillips, A.J. Rose Hays, Madeline Kling, Alexandra Zhao, Eric T. Madugula, Sasidhar Vilkhu, Ramandeep S. Vasireddy, Praful Krishna Hier- lemann, Andreas Hong, Guosong Chichilnisky, E.J. Melosh, Nicholas A. bioRxiv Article Silicon-based planar microelectronics is a powerful tool for scalably recording and modulating neural activity at high spatiotemporal resolution, but it remains challenging to target neural structures in three dimensions (3D). We present a method for directly fabricating 3D arrays of tissue-penetrating microelectrodes onto silicon microelectronics. Leveraging a high-resolution 3D printing technology based on 2-photon polymerization and scalable microfabrication processes, we fabricated arrays of 6,600 microelectrodes 10–130 μm tall and at 35-μm pitch onto a planar silicon-based microelectrode array. The process enables customizable electrode shape, height and positioning for precise targeting of neuron populations distributed in 3D. As a proof of concept, we addressed the challenge of specifically targeting retinal ganglion cell (RGC) somas when interfacing with the retina. The array was customized for insertion into the retina and recording from somas while avoiding the axon layer. We verified locations of the microelectrodes with confocal microscopy and recorded high-resolution spontaneous RGC activity at cellular resolution. This revealed strong somatic and dendritic components with little axon contribution, unlike recordings with planar microelectrode arrays. The technology could be a versatile solution for interfacing silicon microelectronics with neural structures and modulating neural activity at large scale with single-cell resolution. Cold Spring Harbor Laboratory 2023-06-02 /pmc/articles/PMC10312573/ /pubmed/37398164 http://dx.doi.org/10.1101/2023.05.30.542925 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Wang, Pingyu
Wu, Eric G.
Uluşan, Hasan
Phillips, A.J.
Rose Hays, Madeline
Kling, Alexandra
Zhao, Eric T.
Madugula, Sasidhar
Vilkhu, Ramandeep S.
Vasireddy, Praful Krishna
Hier- lemann, Andreas
Hong, Guosong
Chichilnisky, E.J.
Melosh, Nicholas A.
Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title_full Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title_fullStr Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title_full_unstemmed Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title_short Direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
title_sort direct-print three-dimensional electrodes for large- scale, high-density, and customizable neural inter- faces
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10312573/
https://www.ncbi.nlm.nih.gov/pubmed/37398164
http://dx.doi.org/10.1101/2023.05.30.542925
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