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Postnov, D. E.

Publications and source records attributed to Postnov, D. E..

2 recordsLinked to original sources

Modeling of astrocyte networks: towards realistic topology and dynamics

Neuronal firing and neuron-to-neuron synaptic wiring are currently widely described as orchestrated by astrocytes -- elaborately ramified glial cells tiling the cortical and hippocampal space into non-overlapping domains, each covering hundreds of individual dendrites and hundreds thousands synapses. A key component to astrocytic signaling is the dynamics of cytosolic Ca2+ which displays multiscale spatiotemporal patterns from short confined elemental Ca2+ events (puffs) to Ca2+ waves expanding through many cells. Here we synthesize the current understanding of astrocyte morphology, coupling local synaptic activity to astrocytic Ca2+ in perisynaptic astrocytic processes and morphology-defined mechanisms of Ca2+ regulation in a distributed model. To this end, we build simplified realistic data-driven spatial network templates and compile model equations as defined by local cell morphology. The input to the model is spatially uncorrelated stochastic synaptic activity. The proposed modeling approach is validated by statistics of simulated Ca2+ transients at a single cell level. In multicellular templates we observe regular sequences of cell entrainment in Ca2+ waves, as a result of interplay between stochastic input and morphology variability between individual astrocytes. Our approach adds spatial dimension to the existing astrocyte models by employment of realistic morphology while retaining enough flexibility and scalability to be embedded in multiscale heterocellular models of neural tissue. We conclude that the proposed approach provides a useful description of neuron-driven Ca2+-activity in the astrocyte syncytium.

neuroscience

Diffusion assessment through image processing: beyond the point-source paradigm

The quantification of transport processes of different substances in the brains parenchyma is important in the context of understanding brain functioning. Most of the currently used methods for assessment of the effective diffusion coefficient rely on the point-source paradigm. We propose a method for the quantitative characterization of the diffusion process in the brains parenchyma using a set of images recorded in the experiment during the spreading of a fluorescent dye. Our method exploits the frame-wise comparison of experimental data with a set of images that would be observed for an ideal diffusion process within the same topology. We obtain this reference set of images using blurring the image with an appropriate kernel function, and the degree of such blurring correlates with the spreading process of a dye. We demonstrate the applicability of the proposed method using (i) the simulated surrogate data, (ii) the set of experimentally recorded fluorescent images of the isolated event of blood-brain barrier (BBB) opening, and (iii) the images of massive multi-source spreading of fluorescent dye.

biophysics