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Updated: Jul 8, 2026

Preparation Of Neovascular Tissues from Human Glioma Tissues for Quantitative Proteomics Analysis of Tumor Angiogenesis
Published on: March 20, 2026
Suppression of VEGF secretion and changes in glioblastoma multiforme microenvironment by inhibition of
Lincoln A Edwards1, Janet Woo, Lynsey A Huxham
1Department of Advanced Therapeutics, BC Cancer Agency, Vancouver, British Columbia, Canada.
Abstract:
Integrin-linked kinase (ILK) was assesed as a therapeutic target in glioblastoma xenograft models through multiple endpoints including treatment related changes in the tumor microenvironment. Glioblastoma cell lines were tested in vitro for sensitivity toward the small-molecule inhibitors QLT0254 and QLT0267. Cell viability, cell cycle, and apoptosis were evaluated using MTT assay, flow cytometry, caspase activation, and DAPI staining. Western blotting and ELISA were used for protein analysis (ILK, PKB/Akt, VEGF, and HIF-1alpha). In vivo assessment of growth rate, cell proliferation, BrdUrd, blood vessel mass (CD31 labeling), vessel perfusion (Hoechst 33342), and hypoxia (EF-5) was done using U87MG glioblastoma xenografts in RAG2-M mice treated orally with QLT0267 (200 mg/kg q.d.). ILK inhibition in vitro with QLT0254 and QLT0267 resulted in decreased levels of phospho-PKB/Akt (Ser473), secreted VEGF, G2-M block, and apoptosis induction. Mice treated with QLT0267 exhibited significant delays in tumor growth (treated 213 mm3 versus control 549 mm3). In situ analysis of U87MG tumor cell proliferation from QLT0267-treated mice was significantly lower relative to untreated mice. Importantly, VEGF and HIF-1alpha expression decreased in QLT0267-treated tumors as did the percentage of blood vessel mass and numbers of Hoechst 33342 perfused tumor vessels compared with control tumors (35% versus 83%). ILK inhibition with novel small-molecule inhibitors leads to treatment-associated delays in tumor growth, decreased tumor angiogenesis, and functionality of tumor vasculature. The therapeutic effects of a selected ILK inhibitor (QLT0267) should be determined in the clinic in cancers that exhibit dysregulated ILK, such as PTEN-null glioblastomas.
Insights
Integrin-linked kinase (ILK) inhibitors like QLT0267 show promise for glioblastoma treatment. These drugs reduce tumor growth, angiogenesis, and improve blood vessel function, warranting clinical investigation.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Integrin-linked kinase (ILK) is a potential therapeutic target in glioblastoma.
- Glioblastoma exhibits dysregulated ILK, particularly in PTEN-null cases.
- Novel small-molecule inhibitors offer a new avenue for glioblastoma treatment.
Purpose of the Study:
- To evaluate integrin-linked kinase (ILK) as a therapeutic target in glioblastoma.
- To assess the efficacy of ILK inhibitors (QLT0254, QLT0267) in vitro and in vivo.
- To investigate the impact of ILK inhibition on glioblastoma tumor microenvironment.
Main Methods:
- In vitro studies utilized glioblastoma cell lines to assess inhibitor sensitivity, cell viability, cell cycle, apoptosis, and protein expression (ILK, PKB/Akt, VEGF, HIF-1alpha).
- In vivo studies employed U87MG glioblastoma xenografts in RAG2-M mice treated with QLT0267.
- Tumor growth, proliferation, angiogenesis (CD31), vessel perfusion (Hoechst 33342), and hypoxia (EF-5) were analyzed.
Main Results:
- In vitro ILK inhibition decreased phospho-PKB/Akt, secreted VEGF, induced G2-M cell cycle arrest, and apoptosis.
- QLT0267 treatment significantly delayed tumor growth in mice (213 mm3 vs. 549 mm3).
- Tumor angiogenesis, vessel perfusion, and hypoxia were reduced in QLT0267-treated mice, alongside decreased tumor cell proliferation.
Conclusions:
- ILK inhibition using novel small-molecule inhibitors effectively delays glioblastoma tumor growth.
- Targeting ILK reduces tumor angiogenesis and improves the functionality of tumor vasculature.
- QLT0267 demonstrates therapeutic potential for glioblastomas with dysregulated ILK, meriting clinical trials.
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