BédardC., GomesJ.-M., BalT. and DestexheA., A framework to reconcile frequency scaling measurements, from intracellular recordings, local-field potentials, up to EEG and MEG signals, Journal of Integrative Neuroscience16 (2017), 3–18.
2.
BergH.C. and PurcellE.M., Physics of chemoreception, Biophysical Journal20 (1977), 193–219. doi:10.1016/S0006-3495(77)85544-6.
3.
de LimaV.M.F. and HankeW., Extracellular matrix and its role in conveying glial/neural interactions in health and disease, Journal of Integrative Neuroscience16 (2017), 93–106.
4.
Harris BozerA.L., UhelskiM.L. and LiA.-L., Extrapolating meaning from local field potential recordings, Journal of Integrative Neuroscience16 (2017), 107–126.
5.
MaexR., On the Nernst–Planck equation, Journal of Integrative Neuroscience16 (2017), 73–91.
6.
PereiraA.Jr, Astroglial hydro-ionic waves guided by the extracellular matrix: An exploratory model, Journal of Integrative Neuroscience16 (2017), 57–72.
PodsJ., A comparison of computational models for the extracellular potential of neurons, Journal of Integrative Neuroscience16 (2017), 19–32.
9.
QianN. and SejnowskiT.J., An electro-diffusion model for computing membrane potentials and ionic concentrations in branching dendrites, spines and axons, Biological Cybernetics62 (1989), 1–15. doi:10.1007/BF00217656.
10.
XiangZ.X., LiuG.Z., TangC.X. and YanL.X., A model of ion transport processes along and across the neuronal membrane, Journal of Integrative Neuroscience16 (2017), 33–55.