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Updated: May 10, 2026

Method for Novel Anti-Cancer Drug Development using Tumor Explants of Surgical Specimens
Published on: July 29, 2011
Brain tumor stem cells: Molecular characteristics and their impact on therapy
David L Schonberg1, Daniel Lubelski2, Tyler E Miller3
1Department of Stem Cell Biology and Regenerative Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, OH 44195, United States.
Abstract:
Glioblastoma (GBM) is the most prevalent primary brain tumor and ranks among the most lethal of human cancers with conventional therapy offering only palliation. Great strides have been made in understanding brain cancer genetics and modeling these tumors with new targeted therapies being tested, but these advances have not translated into substantially improved patient outcomes. Multiple chemotherapeutic agents, including temozolomide, the first-line treatment for glioblastoma, have been developed to kill cancer cells. However, the response to temozolomide in GBM is modest. Radiation is also moderately effective but this approach is plagued by limitations due to collateral radiation damage to healthy brain tissue and development of radioresistance. Therapeutic resistance is attributed at least in part to a cell population within the tumor that possesses stem-like characteristics and tumor propagating capabilities, referred to as cancer stem cells. Within GBM, the intratumoral heterogeneity is derived from a combination of regional genetic variance and a cellular hierarchy often regulated by distinct cancer stem cell niches, most notably perivascular and hypoxic regions. With the recent emergence as a key player in tumor biology, cancer stem cells have symbiotic relationships with the tumor microenvironment, oncogenic signaling pathways, and epigenetic modifications. The origins of cancer stem cells and their contributions to brain tumor growth and therapeutic resistance are under active investigation with novel anti-cancer stem cell therapies offering potential new hope for this lethal disease.
Insights
Glioblastoma (GBM) is a deadly brain cancer. Cancer stem cells drive tumor growth and resistance to treatments like temozolomide and radiation, necessitating new therapeutic strategies.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Genetics
Background:
- Glioblastoma (GBM) is the most common and lethal primary brain tumor.
- Current therapies offer limited palliation and fail to significantly improve patient outcomes.
- Therapeutic resistance is linked to cancer stem cells (CSCs) within the tumor.
Purpose of the Study:
- To explore the role of cancer stem cells in glioblastoma.
- To understand CSCs' contribution to tumor heterogeneity and therapeutic resistance.
- To highlight the potential of novel anti-CSC therapies.
Main Methods:
- Review of current literature on glioblastoma genetics and CSC biology.
- Analysis of CSC niches (perivascular, hypoxic) and their regulation.
- Investigation of CSC interactions with the tumor microenvironment and epigenetic modifications.
Main Results:
- Glioblastoma exhibits significant intratumoral heterogeneity, partly due to CSCs.
- CSCs possess stem-like properties and drive tumor propagation.
- CSCs are implicated in resistance to temozolomide and radiation therapy.
Conclusions:
- Cancer stem cells are crucial players in glioblastoma biology and treatment failure.
- Targeting CSCs and their niches presents a promising therapeutic avenue.
- Further research into CSC origins and novel therapies is essential for improving GBM patient outcomes.
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