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Updated: Aug 26, 2025

Quantitative Immunohistochemistry of the Cellular Microenvironment in Patient Glioblastoma Resections
Published on: July 31, 2017
Targeting extracellular matrix remodeling sensitizes glioblastoma to ionizing radiation
Varsha Thakur1,2, Vijay S Thakur2,3, Brittany Aguila2,3
1Phillip Frost Department of Dermatology and Cutaneous Surgery, University of Miami Miller School of Medicine, Miami, Florida, USA.
Background:
The median survival of Glioblastoma multiforme (GBM) patients is 14+ months due to poor responses to surgery and chemoradiation. Means to counteract radiation resistance are therefore highly desirable. We demonstrate the membrane bound matrix metalloproteinase MT1-MMP promotes resistance of GBM to radiation, and that using a selective and brain permeable MT1-MMP inhibitor, (R)-ND336, improved tumor control can be achieved in preclinical studies.
Methods:
Public microarray and RNA-sequencing data were used to determine MT1-MMP relevance in GBM patient survival. Glioma stem-like neurospheres (GSCs) were used for both in vitro and in vivo assays. An affinity resin coupled with proteomics was used to quantify active MT1-MMP in brain tissue of GBM patients. Short hairpin RNA (shRNA)-mediated knockdown of MT1-MMP and inhibition via the MT1-MMP inhibitor (R)-ND336, were used to assess the role of MT1-MMP in radio-resistance.
Results:
MT1-MMP expression inversely correlated with patient survival. Active MT1-MMP was present in brain tissue of GBM patients but not in normal brain. shRNA- or (R)-ND336-mediated inhibition of MT1-MMP sensitized GSCs to radiation leading to a significant increase in survival of tumor-bearing animals. MT1-MMP depletion reduced invasion via the effector protease MMP2; and increased the cytotoxic response to radiation via induction of replication fork stress and accumulation of double strand breaks (DSBs), making cells more susceptible to genotoxic insult.
Conclusions:
MT1-MMP is pivotal in maintaining replication fork stability. Disruption of MT1-MMP sensitizes cells to radiation and can counteract invasion. (R)-ND336, which efficiently penetrates the brain, is therefore a novel radio-sensitizer in GBM.
Insights
Matrix metalloproteinase MT1-MMP promotes Glioblastoma multiforme radiation resistance. Inhibiting MT1-MMP with (R)-ND336 sensitizes tumors to radiation, improving survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Glioblastoma multiforme (GBM) patients have poor survival rates (median 14+ months) due to resistance to standard treatments.
- Developing strategies to overcome radiation resistance in GBM is crucial for improving patient outcomes.
- Membrane-bound matrix metalloproteinase MT1-MMP is implicated in promoting GBM resistance to radiation therapy.
Purpose of the Study:
- To investigate the role of MT1-MMP in GBM radioresistance.
- To evaluate the efficacy of a novel MT1-MMP inhibitor, (R)-ND336, as a radio-sensitizer for GBM.
Main Methods:
- Analysis of public microarray and RNA-sequencing data to correlate MT1-MMP expression with GBM patient survival.
- In vitro and in vivo studies using glioma stem-like neurospheres (GSCs).
- Quantification of active MT1-MMP in GBM patient brain tissue using proteomics.
- Assessment of MT1-MMP's role in radioresistance via shRNA knockdown and treatment with the inhibitor (R)-ND336.
Main Results:
- MT1-MMP expression inversely correlated with GBM patient survival.
- Active MT1-MMP was detected in GBM tissue but not in normal brain.
- Inhibition of MT1-MMP (via shRNA or (R)-ND336) sensitized GSCs to radiation, significantly improving survival in tumor-bearing animals.
- MT1-MMP inhibition reduced invasion and enhanced radiation cytotoxicity by inducing replication fork stress and DNA double-strand breaks.
Conclusions:
- MT1-MMP plays a critical role in maintaining replication fork stability in GBM cells.
- Disrupting MT1-MMP function sensitizes GBM cells to radiation and reduces invasion.
- (R)-ND336, a brain-penetrant MT1-MMP inhibitor, shows promise as a novel radio-sensitizer for Glioblastoma multiforme.
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