| Literature DB >> 27283525 |
I A Netland1, H E Førde1, L Sleire1, L Leiss1,2, M A Rahman1, B S Skeie3, H Miletic4,5, P Ø Enger1,4,6, D Goplen7,8.
Abstract
Glioblastomas (GBMs) are aggressive brain tumours with a dismal prognosis, despite combined surgery, radio- and chemotherapy. Close to 90 % of all GBMs harbour a deregulated PI3K pathway, which is essential in regulating central cellular functions such as proliferation, cell growth, motility and survival. Thus, PI3K represents a potential target for molecular therapy in GBM. We investigated the anti-tumour efficacy of the PI3K inhibitor buparlisib (NVP-BKM120) in GBM cell lines in vitro and in vivo, when treatment was initiated after MRI-confirmed tumour engraftment. We found that buparlisib inhibited glioma cell proliferation in a dose dependent manner, demonstrated by MTS assay, manual cell count and BrdU incorporation. A dose dependent increase in apoptosis was observed through flow cytometric analysis. Furthermore, by immunocytochemistry and western blot, we found a dose dependent inhibition of Akt phosphorylation. Moreover, buparlisib prolonged survival of nude rats harboring human GBM xenografts in three independent studies and reduced the tumours' volumetric increase, as determined by MRI. In addition, histological analyses of xenograft rat brains showed necrotic areas and change in tumour cell nuclei in buparlisib-treated animals. The rats receiving buparlisib maintained their weight, activity level and food- and water intake. In conclusion, buparlisib effectively inhibits glioma cell proliferation in vitro and growth of human GBM xenografts in nude rats. Moreover, the compound is well tolerated when administered at doses providing anti-tumour efficacy. Thus, buparlisib may have a future role in glioma therapy, and further studies are warranted to validate this compound for human use.Entities:
Keywords: Brain tumours; Glioblastoma; PI3K; Patient-derived xenograft; Proliferation; Targeted therapy
Mesh:
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Year: 2016 PMID: 27283525 PMCID: PMC4972854 DOI: 10.1007/s11060-016-2158-1
Source DB: PubMed Journal: J Neurooncol ISSN: 0167-594X Impact factor: 4.130
Fig. 1a IC50 doses of buparlisib for P3 (left) and U87 (right) glioma cells. b Relative cell number of P3 (left) and U87 (right) glioma cells exposed to buparlisib for 72 h. c Quantification of BrdU positive P3 (left) and U87 (right) glioma cells treated with buparlisib for 72 h with doses as indicated, and subsequently pulsed with BrdU. d Quantification of Annexin V- and PI-positive P3 (left) and U87 (right) glioma cells treated with buparlisib for 72 h with doses as indicated, and subsequently incubated with PI and Annexin V Alexa Fluor 488 conjugate. Error bars represent SEM. Red bars indicate p values for linear trends. All experiments were performed three times. *p < 0.05, **p < 0.01, ***p < 0.001
Fig. 2a Immunocytochemistry showing Akt phosphorylation in U87-cells at S473 after exposure to different concentrations of buparlisib for 72 h. Upper panel overlay image of Akt phosphorylated at site S473 (FITC, green) and total Akt (AP555, red) with DAPI nuclear counterstaining (blue). Middle panel 1 DAPI nuclear staining (blue). Middle panel 2 Akt phosphorylated at site S473 (FITC, green). Lower panel total Akt-levels (AP555, red). b Left western blots showing levels of pAkt (T308), pAkt (S473) and total Akt in U87 cells exposed to buparlisib for 72 h. Right densitometric assessment of western blots, showing relative changes in phosphorylation. c Left western blots showing levels of pAkt (T308), pAkt (S473) and total Akt in P3 cells exposed to buparlisib for 72 h. Right densitometric assessment of western blots, showing relative changes in phosphorylation. Error bars represent SEM of three independent experiments. p values estimated represent linear trends. *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001
Fig. 3a Kaplan–Meyer survival curve for first study with nude rats carrying P3 xenografts (n = 9). b Kaplan–Meyer survival curve for the second study, with nude rats carrying P3 xenografts (n = 6). c MRI-based assessments of tumour volumes 3 weeks post implantation (treatment start) and 5 weeks post implantation. *p < 0.05. d H&E and nestin immunostained sections of treated and control tumors. Arrows indicate a necrotic tumour area. Scale bars 50 μm
Fig. 4a Kaplan–Meyer survival curve for nude rats carrying orthotopic GBM cell line (U87) xenografts (n = 18). b MRI-based assessments of tumour volumes 10 days post implantation (treatment start) and 24 days post implantation. *p < 0.05 c T1-weighted magnetic resonance images (MRI) with contrast, from two representative rats; one from each group
Fig. 5a Western blots showing levels of pAkt (T308), pAkt (S473) and total Akt in the tumours of one representative U87-xenografted rats from each group. Tumor material was collected 2–4 h post treatment when rats had reached humane endpoints. b Densitometric assessment of the western blot in (a), showing relative change in phosphorylation. *p < 0.05. c Weight measurements for the two groups