Ion-concentration gradients induced by synaptic input increase the voltage depolarization in dendritic spines
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Publication:6580453
DOI10.1007/S10827-024-00864-4zbMATH Open1544.92035MaRDI QIDQ6580453
Publication date: 29 July 2024
Published in: Journal of Computational Neuroscience (Search for Journal in Brave)
dendritic spinescable theoryelectrodiffusiondiffusion currentsion-concentrationsspine neck resistance
Neural biology (92C20) PDEs in connection with biology, chemistry and other natural sciences (35Q92)
Cites Work
- Title not available (Why is that?)
- Analysis of the Poisson-Nernst-Planck equation in a ball for modeling the voltage-current relation in neurobiological microdomains
- An electro-diffusion model for computing membrane potentials and ionic concentrations in branching dendrites, spines and axons
- Modelling dendritic spines with the finite element method, investigating the impact of geometry on electric and calcic responses
- Electrodiffusion models of synaptic potentials in dendritic spines
- The Necessary Modeling Detail for Neuronal Signaling: Poisson--Nernst--Planck and Cable Equation Models in One and Three Dimensions
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