Literature DB >> 23387973

The microarray gene profiling analysis of glioblastoma cancer cells reveals genes affected by FAK inhibitor Y15 and combination of Y15 and temozolomide.

Grace Huang, Baotran Ho, Jeffrey Conroy, Song Liu, Hu Qiang, Vita Golubovskaya1.   

Abstract

Focal adhesion is known to be highly expressed and activated in glioma cells. Recently, we demonstrated that FAK autophosphorylation inhibitor, Y15 significantly decreased tumor growth of DBTRG and U87 cells, especially in combination with temozolomide. In the present report, we performed gene expression analysis in these cells to reveal genes affected by Y15, temozolomide and combination of Y15 and temozolomide. We tested the effect of Y15 on gene expression by Illumina Human HT12v4 microarray assay and detected 8087 and 6555 genes, which were significantly either up- or down-regulated by Y15-treatment in DBTRG and U87 cells, respectively (p<0.05). Moreover, DBTRG and U87 cells treated with Y15 changed expression of 1332 and 462 genes more than 1.5 fold, p<0.05, respectively and had 237 common genes affected by Y15. The common genes up-regulated by Y15 included GADD45A, HSPA6 (heat-shock 70); DUSP1, DUSP 5 (dual-phosphatase 5); CDKN1A (p21) and common down-regulated genes included kinesins, such as KIF11, 14, 20A, 20B; topoisomerase II, TOP2A; cyclin F; cell cycle protein: BUB1; PARP1, POLA1. In addition, we detected genes affected by temozolomide and by combination of Y15 and temozolomide treatment in U87 cells. Among genes up-regulated by Y15 and temozolomide more significantly than by each agent alone were: COX7B; interferon, gamma-inducible transcript: IFI16; DDIT4; GADD45G and down-regulated: KIF3A, AKT1; ABL; JAK1, GLI3 and ALDH1A3. Thus, microarray gene expression analysis can be effective in establishing genes affected in response to FAK inhibitor alone and in response to combination of Y15 with temozolomide that is important for glioblastoma therapy.

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Year:  2014        PMID: 23387973      PMCID: PMC3883957          DOI: 10.2174/18715206113139990141

Source DB:  PubMed          Journal:  Anticancer Agents Med Chem        ISSN: 1871-5206            Impact factor:   2.505


  19 in total

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2.  Focal adhesion kinase enhances signaling through the Shc/extracellular signal-regulated kinase pathway in anaplastic astrocytoma tumor biopsy samples.

Authors:  Timothy P Hecker; J Robert Grammer; G Yancey Gillespie; Jerry Stewart; Candece L Gladson
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5.  Pharmacologic blockade of FAK autophosphorylation decreases human glioblastoma tumor growth and synergizes with temozolomide.

Authors:  Vita M Golubovskaya; Grace Huang; Baotran Ho; Michael Yemma; Carl D Morrison; Jisook Lee; Brian P Eliceiri; William G Cance
Journal:  Mol Cancer Ther       Date:  2012-12-12       Impact factor: 6.261

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7.  Cloning mammalian genes by expression selection of genetic suppressor elements: association of kinesin with drug resistance and cell immortalization.

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5.  Microarray gene profiling analysis of glioblastoma cell line U87 reveals suppression of the FANCD2/Fanconi anemia pathway by the combination of Y15 and temozolomide.

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Review 6.  Understanding Glioblastoma Biomarkers: Knocking a Mountain with a Hammer.

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8.  Topological robustness analysis of protein interaction networks reveals key targets for overcoming chemotherapy resistance in glioma.

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9.  Graphene oxide down-regulates genes of the oxidative phosphorylation complexes in a glioblastoma.

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Journal:  BMC Mol Biol       Date:  2019-01-03       Impact factor: 2.946

10.  FAK tyrosine phosphorylation is regulated by AMPK and controls metabolism in human skeletal muscle.

Authors:  David G Lassiter; Carolina Nylén; Rasmus J O Sjögren; Alexander V Chibalin; Harriet Wallberg-Henriksson; Erik Näslund; Anna Krook; Juleen R Zierath
Journal:  Diabetologia       Date:  2017-10-11       Impact factor: 10.122

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