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Shyntar, A.

Publications and source records attributed to Shyntar, A..

2 recordsLinked to original sources

Calcium Signalling in Glioblastoma Networks of Different Topologies and Possible Treatments

Glioblastoma cells form connected cell networks, utilizing tumor microtubes to transmit calcium between cells. A new cell type called "periodic cell" is integral in sustaining calcium signalling in a glioblastoma network. Periodic cells are rare, can sustain consistent intracellular calcium transients, are likely to have KCa3.1 pumps, and have on average more tumor microtubes than other glioma cells. Here we adapt an ordinary differential equation model for intracellular as well as intercellular calcium signalling and apply it to a large glioma cell network. Using the model, three main hypotheses for the driving mechanism of periodic cells were tested: 1. a fixed and elevated IP3 concentration, 2. added benefit from influx of calcium due to KCa3.1 pumps, or 3. oscillation in calcium influx into the cell through the plasma membrane. All three hypotheses yield similar calcium oscillation patterns resembling the trends seen in the data of Hausmann et al. 2023. In vivo, glioma networks were shown to have small-world and scale free network properties. We apply our model to small-world, scale-free and random networks. For these networks, we test how communication is inhibited through removal of cells, removal of tumor microtubes, and inhibition of KCa3.1 pumps. All three network types were more vulnerable to random cell damage than to random TM damage. We find that inhibition of KCa3.1 pumps can have a significant impact on the inhibition of network communication, however, to fully degrade the calcium signalling network, all periodic cells must be eradicated, confirming experimental observations.

cancer biology↗

Mathematical Modelling of Microtube-Driven Regrowth ofGlioma After Local Resection

Recently, glioblastoma tumors were shown to form tumor microtubes, which are thin long protrusions that help the tumor grow and spread. Follow-up experiments were conducted on mice in order to test what impact the tumor microtubes have on tumor regrowth after partial removal of a tumor region. The surgery was performed in isolation and along with growth-inhibiting treatments such as a tumor microtube inhibiting treatment and an anti-inflammatory treatment. Here, we propose a partial differential equation model applicable to describe the microtube driven regrowth of the cancer in the lesion. We find that the model is able to replicate the main trends seen in the experiments such as fast regrowth, larger cancer density in the lesion, and further spread into healthy tissue. The model indicates that the dominant mechanisms of re-growth are growth-inducing wound healing mechanisms. The tumor microtubes accelerate this process as the microtubes provide orientational guidance from the untreated tissue into the lesion.

cancer biology↗