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pmid: 31796727
pmc: PMC6890780
AbstractBioelectronic medicine is driving the need for neuromorphic microcircuits that integrate raw nervous stimuli and respond identically to biological neurons. However, designing such circuits remains a challenge. Here we estimate the parameters of highly nonlinear conductance models and derive the ab initio equations of intracellular currents and membrane voltages embodied in analog solid-state electronics. By configuring individual ion channels of solid-state neurons with parameters estimated from large-scale assimilation of electrophysiological recordings, we successfully transfer the complete dynamics of hippocampal and respiratory neurons in silico. The solid-state neurons are found to respond nearly identically to biological neurons under stimulation by a wide range of current injection protocols. The optimization of nonlinear models demonstrates a powerful method for programming analog electronic circuits. This approach offers a route for repairing diseased biocircuits and emulating their function with biomedical implants that can adapt to biofeedback.
Male, 570, electrical and electronic engineering, Science, Models, Neurological, General Physics and Astronomy, 1600 General Chemistry, Genetics and Molecular Biology, optimization of nonlinear models, nonlinear conductance models, Hippocampus, Article, Ion Channels, 1300 General Biochemistry, Genetics and Molecular Biology, biomedical engineering, Animals, electronics, photonics and device physics, Rats, Wistar, 10194 Institute of Neuroinformatics, Neurons, electronics, Pyramidal Cells, Respiration, Q, 500, photonics and device physics, General Chemistry, 3100 General Physics and Astronomy, neuromorphic microcircuits, General Biochemistry, 570 Life sciences; biology, Ion Channel Gating, Brain Stem
Male, 570, electrical and electronic engineering, Science, Models, Neurological, General Physics and Astronomy, 1600 General Chemistry, Genetics and Molecular Biology, optimization of nonlinear models, nonlinear conductance models, Hippocampus, Article, Ion Channels, 1300 General Biochemistry, Genetics and Molecular Biology, biomedical engineering, Animals, electronics, photonics and device physics, Rats, Wistar, 10194 Institute of Neuroinformatics, Neurons, electronics, Pyramidal Cells, Respiration, Q, 500, photonics and device physics, General Chemistry, 3100 General Physics and Astronomy, neuromorphic microcircuits, General Biochemistry, 570 Life sciences; biology, Ion Channel Gating, Brain Stem
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 61 | |
popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Top 1% | |
influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Top 10% | |
impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Top 1% |
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