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A biohybrid synapse with neurotransmitter-mediated plasticity

Authors :
Keene, Scott T.
Lubrano, Claudia
Kazemzadeh, Setareh
Melianas, Armantas
Tuchman, Yaakov
Polino, Giuseppina
Scognamiglio, Paola
Cinà, Lucio
Salleo, Alberto
van de Burgt, Yoeri B.
Santoro, Francesca
Keene, Scott T.
Lubrano, Claudia
Kazemzadeh, Setareh
Melianas, Armantas
Tuchman, Yaakov
Polino, Giuseppina
Scognamiglio, Paola
Cinà, Lucio
Salleo, Alberto
van de Burgt, Yoeri B.
Santoro, Francesca
Source :
Nature Materials vol.19 (2020) date: 2020-09-01 nr.9 p.969-973 [ISSN 1476-1122]
Publication Year :
2020

Abstract

Brain-inspired computing paradigms have led to substantial advances in the automation of visual and linguistic tasks by emulating the distributed information processing of biological systems1. The similarity between artificial neural networks (ANNs) and biological systems has inspired ANN implementation in biomedical interfaces including prosthetics2 and brain-machine interfaces3. While promising, these implementations rely on software to run ANN algorithms. Ultimately, it is desirable to build hardware ANNs4,5 that can both directly interface with living tissue and adapt based on biofeedback6,7. The first essential step towards biologically integrated neuromorphic systems is to achieve synaptic conditioning based on biochemical signalling activity. Here, we directly couple an organic neuromorphic device with dopaminergic cells to constitute a biohybrid synapse with neurotransmitter-mediated synaptic plasticity. By mimicking the dopamine recycling machinery of the synaptic cleft, we demonstrate both long-term conditioning and recovery of the synaptic weight, paving the way towards combining artificial neuromorphic systems with biological neural networks.

Details

Database :
OAIster
Journal :
Nature Materials vol.19 (2020) date: 2020-09-01 nr.9 p.969-973 [ISSN 1476-1122]
Notes :
Keene, Scott T.
Publication Type :
Electronic Resource
Accession number :
edsoai.on1359187087
Document Type :
Electronic Resource