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Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice

Glioblastoma (GB) is an aggressive cancer with a high probability of recurrence, despite active chemoradiotherapy with temozolomide (TMZ) and dexamethasone (DXM). These systemic drugs affect the glycosylated components of brain tissue involved in GB development; however, their effects on heparan sul...

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Autores principales: Sokolov, Dmitry K., Shevelev, Oleg B., Khotskina, Anna S., Tsidulko, Alexandra Y., Strokotova, Anastasia V., Kazanskaya, Galina M., Volkov, Alexander M., Kliver, Evgenii E., Aidagulova, Svetlana V., Zavjalov, Evgenii L., Grigorieva, Elvira V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10299293/
https://www.ncbi.nlm.nih.gov/pubmed/37373391
http://dx.doi.org/10.3390/ijms241210243
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author Sokolov, Dmitry K.
Shevelev, Oleg B.
Khotskina, Anna S.
Tsidulko, Alexandra Y.
Strokotova, Anastasia V.
Kazanskaya, Galina M.
Volkov, Alexander M.
Kliver, Evgenii E.
Aidagulova, Svetlana V.
Zavjalov, Evgenii L.
Grigorieva, Elvira V.
author_facet Sokolov, Dmitry K.
Shevelev, Oleg B.
Khotskina, Anna S.
Tsidulko, Alexandra Y.
Strokotova, Anastasia V.
Kazanskaya, Galina M.
Volkov, Alexander M.
Kliver, Evgenii E.
Aidagulova, Svetlana V.
Zavjalov, Evgenii L.
Grigorieva, Elvira V.
author_sort Sokolov, Dmitry K.
collection PubMed
description Glioblastoma (GB) is an aggressive cancer with a high probability of recurrence, despite active chemoradiotherapy with temozolomide (TMZ) and dexamethasone (DXM). These systemic drugs affect the glycosylated components of brain tissue involved in GB development; however, their effects on heparan sulfate (HS) remain unknown. Here, we used an animal model of GB relapse in which SCID mice first received TMZ and/or DXM (simulating postoperative treatment) with a subsequent inoculation of U87 human GB cells. Control, peritumor and U87 xenograft tissues were investigated for HS content, HS biosynthetic system and glucocorticoid receptor (GR, Nr3c1). In normal and peritumor brain tissues, TMZ/DXM administration decreased HS content (5–6-fold) but did not affect HS biosynthetic system or GR expression. However, the xenograft GB tumors grown in the pre-treated animals demonstrated a number of molecular changes, despite the fact that they were not directly exposed to TMZ/DXM. The tumors from DXM pre-treated animals possessed decreased HS content (1.5–2-fold), the inhibition of HS biosynthetic system mainly due to the -3–3.5-fold down-regulation of N-deacetylase/N-sulfotransferases (Ndst1 and Ndst2) and sulfatase 2 (Sulf2) expression and a tendency toward a decreased expression of the GRalpha but not the GRbeta isoform. The GRalpha expression levels in tumors from DXM or TMZ pre-treated mice were positively correlated with the expression of a number of HS biosynthesis-involved genes (Ext1/2, Ndst1/2, Glce, Hs2st1, Hs6st1/2), unlike tumors that have grown in intact SCID mice. The obtained data show that DXM affects HS content in mouse brain tissues, and GB xenografts grown in DXM pre-treated animals demonstrate attenuated HS biosynthesis and decreased HS content.
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spelling pubmed-102992932023-06-28 Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice Sokolov, Dmitry K. Shevelev, Oleg B. Khotskina, Anna S. Tsidulko, Alexandra Y. Strokotova, Anastasia V. Kazanskaya, Galina M. Volkov, Alexander M. Kliver, Evgenii E. Aidagulova, Svetlana V. Zavjalov, Evgenii L. Grigorieva, Elvira V. Int J Mol Sci Article Glioblastoma (GB) is an aggressive cancer with a high probability of recurrence, despite active chemoradiotherapy with temozolomide (TMZ) and dexamethasone (DXM). These systemic drugs affect the glycosylated components of brain tissue involved in GB development; however, their effects on heparan sulfate (HS) remain unknown. Here, we used an animal model of GB relapse in which SCID mice first received TMZ and/or DXM (simulating postoperative treatment) with a subsequent inoculation of U87 human GB cells. Control, peritumor and U87 xenograft tissues were investigated for HS content, HS biosynthetic system and glucocorticoid receptor (GR, Nr3c1). In normal and peritumor brain tissues, TMZ/DXM administration decreased HS content (5–6-fold) but did not affect HS biosynthetic system or GR expression. However, the xenograft GB tumors grown in the pre-treated animals demonstrated a number of molecular changes, despite the fact that they were not directly exposed to TMZ/DXM. The tumors from DXM pre-treated animals possessed decreased HS content (1.5–2-fold), the inhibition of HS biosynthetic system mainly due to the -3–3.5-fold down-regulation of N-deacetylase/N-sulfotransferases (Ndst1 and Ndst2) and sulfatase 2 (Sulf2) expression and a tendency toward a decreased expression of the GRalpha but not the GRbeta isoform. The GRalpha expression levels in tumors from DXM or TMZ pre-treated mice were positively correlated with the expression of a number of HS biosynthesis-involved genes (Ext1/2, Ndst1/2, Glce, Hs2st1, Hs6st1/2), unlike tumors that have grown in intact SCID mice. The obtained data show that DXM affects HS content in mouse brain tissues, and GB xenografts grown in DXM pre-treated animals demonstrate attenuated HS biosynthesis and decreased HS content. MDPI 2023-06-16 /pmc/articles/PMC10299293/ /pubmed/37373391 http://dx.doi.org/10.3390/ijms241210243 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sokolov, Dmitry K.
Shevelev, Oleg B.
Khotskina, Anna S.
Tsidulko, Alexandra Y.
Strokotova, Anastasia V.
Kazanskaya, Galina M.
Volkov, Alexander M.
Kliver, Evgenii E.
Aidagulova, Svetlana V.
Zavjalov, Evgenii L.
Grigorieva, Elvira V.
Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title_full Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title_fullStr Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title_full_unstemmed Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title_short Dexamethasone Inhibits Heparan Sulfate Biosynthetic System and Decreases Heparan Sulfate Content in Orthotopic Glioblastoma Tumors in Mice
title_sort dexamethasone inhibits heparan sulfate biosynthetic system and decreases heparan sulfate content in orthotopic glioblastoma tumors in mice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10299293/
https://www.ncbi.nlm.nih.gov/pubmed/37373391
http://dx.doi.org/10.3390/ijms241210243
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