| Literature DB >> 29578693 |
Joseph S Najem1,2, Graham J Taylor3,2, Ryan J Weiss4, Md Sakib Hasan4, Garrett Rose4, Catherine D Schuman5, Alex Belianinov6, C Patrick Collier6, Stephen A Sarles2.
Abstract
Solid-state neuromorphic systems based on transistors or memristors have yet to achieve the interconnectivity, performance, and energy efficiency of the brain due to excessive noise, undesirable material properties, and nonbiological switching mechanisms. Here we demonstrate that an alamethicin-doped, synthetic biomembrane exhibits memristive behavior, emulates key synaptic functions including paired-pulse facilitation and depression, and enables learning and computing. Unlike state-of-the-art devices, our two-terminal, biomolecular memristor features similar structure (biomembrane), switching mechanism (ion channels), and ionic transport modality as biological synapses while operating at considerably lower power. The reversible and volatile voltage-driven insertion of alamethicin peptides into an insulating lipid bilayer creates conductive pathways that exhibit pinched current-voltage hysteresis at potentials above their insertion threshold. Moreover, the synapse-like dynamic properties of the biomolecular memristor allow for simplified learning circuit implementations. Low-power memristive devices based on stimuli-responsive biomolecules represent a major advance toward implementation of full synaptic functionality in neuromorphic hardware.Entities:
Keywords: alamethicin; biomembrane; biomolecular memristor; ion channel; lipid bilayer; memristor; neuromorphic computing
Year: 2018 PMID: 29578693 DOI: 10.1021/acsnano.8b01282
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881