International Journal of Molecular Sciences (Dec 2021)

Multiple Irradiation Affects Cellular and Extracellular Components of the Mouse Brain Tissue and Adhesion and Proliferation of Glioblastoma Cells in Experimental System In Vivo

  • Maxim O. Politko,
  • Alexandra Y. Tsidulko,
  • Oxana A. Pashkovskaya,
  • Konstantin E. Kuper,
  • Anastasia V. Suhovskih,
  • Galina M. Kazanskaya,
  • Lyubov S. Klyushova,
  • Dmitry K. Sokolov,
  • Alexander M. Volkov,
  • Evgenii E. Kliver,
  • Alexander A. Zheravin,
  • Svetlana V. Aidagulova,
  • Elvira V. Grigorieva

DOI
https://doi.org/10.3390/ijms222413350
Journal volume & issue
Vol. 22, no. 24
p. 13350

Abstract

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Intensive adjuvant radiotherapy (RT) is a standard treatment for glioblastoma multiforme (GBM) patients; however, its effect on the normal brain tissue remains unclear. Here, we investigated the short-term effects of multiple irradiation on the cellular and extracellular glycosylated components of normal brain tissue and their functional significance. Triple irradiation (7 Gy*3 days) of C57Bl/6 mouse brain inhibited the viability, proliferation and biosynthetic activity of normal glial cells, resulting in a fast brain-zone-dependent deregulation of the expression of proteoglycans (PGs) (decorin, biglycan, versican, brevican and CD44). Complex time-point-specific (24–72 h) changes in decorin and brevican protein and chondroitin sulfate (CS) and heparan sulfate (HS) content suggested deterioration of the PGs glycosylation in irradiated brain tissue, while the transcriptional activity of HS-biosynthetic system remained unchanged. The primary glial cultures and organotypic slices from triple-irradiated brain tissue were more susceptible to GBM U87 cells’ adhesion and proliferation in co-culture systems in vitro and ex vivo. In summary, multiple irradiation affects glycosylated components of normal brain extracellular matrix (ECM) through inhibition of the functional activity of normal glial cells. The changed content and pattern of PGs and GAGs in irradiated brain tissues are accompanied by the increased adhesion and proliferation of GBM cells, suggesting a novel molecular mechanism of negative side-effects of anti-GBM radiotherapy.

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