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Metabolite-induced in vivo fabrication of substrate-free organic bioelectronics

Authors :
Strakosas, Xenofon
Biesmans, Hanne
Abrahamsson, Tobias
Hellman, Karin
Silverå Ejneby, Malin
Donahue, Mary
Ekstrom, Peter
Ek, Fredrik
Savvakis, Marios
Hjort, Martin
Bliman, David
Linares, Mathieu
Lindholm, Caroline
Stavrinidou, Eleni
Gerasimov, Jennifer
Simon, Daniel
Olsson, Roger
Berggren, Magnus
Strakosas, Xenofon
Biesmans, Hanne
Abrahamsson, Tobias
Hellman, Karin
Silverå Ejneby, Malin
Donahue, Mary
Ekstrom, Peter
Ek, Fredrik
Savvakis, Marios
Hjort, Martin
Bliman, David
Linares, Mathieu
Lindholm, Caroline
Stavrinidou, Eleni
Gerasimov, Jennifer
Simon, Daniel
Olsson, Roger
Berggren, Magnus
Publication Year :
2023

Abstract

Interfacing electronics with neural tissue is crucial for understanding complex biological functions, but conventional bioelectronics consist of rigid electrodes fundamentally incompatible with living systems. The difference between static solid-state electronics and dynamic biological matter makes seamless integration of the two challenging. To address this incompatibility, we developed a method to dynamically create soft substrate-free conducting materials within the biological environment. We demonstrate in vivo electrode formation in zebrafish and leech models, using endogenous metabolites to trigger enzymatic polymerization of organic precursors within an injectable gel, thereby forming conducting polymer gels with long-range conductivity. This approach can be used to target specific biological substructures and is suitable for nerve stimulation, paving the way for fully integrated, in vivo-fabricated electronics within the nervous system.<br />Funding Agencies|European Research Council [834677]; Swedish Research Council [2018-06197, RMX18-0083]; Swedish Foundation for Strategic Research [2021-05231]; Knut and Alice Wallenberg Foundation; Onnesjoe Foundation

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1387006147
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1126.science.adc9998