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  An organic artificial spiking neuron for in situ neuromorphic sensing and biointerfacing

Sarkar, T., Lieberth, K., Pavlou, A., Frank, T., Mailaender, V., McCulloch, I., et al. (2022). An organic artificial spiking neuron for in situ neuromorphic sensing and biointerfacing. Nature Electronics, 5, 774-783. doi:10.1038/s41928-022-00859-y.

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 Creators:
Sarkar, Tanmoy, Author
Lieberth, Katharina, Author
Pavlou, Aristea, Author
Frank, Thomas1, Author           
Mailaender, Volker, Author
McCulloch, Iain, Author
Blom, Paul W. M., Author
Torriccelli, Fabrizio, Author
Gkoupidenis, Paschalis, Author
Affiliations:
1Max Planck Research Group: Olfactory Memory / Frank, MPI of Neurobiology, Max Planck Society, ou_3217974              

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Free keywords: dopamine mechanisms excitability barrier synapse Engineering
 Abstract: An organic artificial neuron that is based on a compact nonlinear electrochemical element can operate in a liquid and responds to the concentration of biological species in its surroundings, allowing its behaviour to be modulated, for example, by interfacing with the membranes of living cells. The effective mimicry of neurons is key to the development of neuromorphic electronics. However, artificial neurons are not typically capable of operating in biological environments, which limits their ability to interface with biological components and to offer realistic neuronal emulation. Organic artificial neurons based on conventional circuit oscillators have been created, but they require many elements for their implementation. Here we report an organic artificial neuron that is based on a compact nonlinear electrochemical element. The artificial neuron can operate in a liquid and is sensitive to the concentration of biological species (such as dopamine or ions) in its surroundings. The system offers in situ operation and spiking behaviour in biologically relevant environments-including typical physiological and pathological concentration ranges (5-150 mM)-and with ion specificity. Small-amplitude (1-150 mV) electrochemical oscillations and noise in the electrolytic medium shape the neuronal dynamics, whereas changes in ionic (>= 2% over the physiological baseline) and biomolecular (>= 0.1 mM dopamine) concentrations modulate the neuronal excitability. We also create biohybrid interfaces in which an artificial neuron functions synergistically and in real time with epithelial cell biological membranes.

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 Dates: 2022-11-07
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1038/s41928-022-00859-y
 Degree: -

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Title: Nature Electronics
Source Genre: Journal
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Publ. Info: London : Springer Nature
Pages: - Volume / Issue: 5 Sequence Number: - Start / End Page: 774 - 783 Identifier: ISSN: 2520-1131
CoNE: https://pure.mpg.de/cone/journals/resource/25201131