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Evaluation of Biomarkers in Glioma by Immunohistochemistry on Paraffin-Embedded 3D Glioma Neurosphere Cultures
Published on: January 9, 2019
Molecular biology of human gliomas
Krishan Bansal1, Muh Lii Liang, James T Rutka
1The Hospital for Sick Children, 555 University Avenue, Toronto, Ontario M5G 1X8, Canada.
Abstract:
Human gliomas are the most common primary central nervous system neoplasm, and they are a complex, heterogeneous, and difficult disease to treat. In the past two decades, advances in molecular biology have revolutionized our understanding of the mechanism by which these neoplasms are initiated and progress. While surgery, radiation therapy, and chemotherapy have roles to play in the treatment of patients with gliomas; these therapies are self-limited because of the intrinsic resistance of glioma cells to therapy, and the diffusely infiltrating nature of the lesions. It is now known that malignant gliomas arise from a number of well-characterized genetic alterations and activations of oncogenes and inactivation of tumor suppressor genes. These genetic alterations disrupt critical cell cycle, growth factor activation, apoptotic, cell motility, and invasion pathways that lead to phenotypic changes and neoplastic transformation. Research in each of these fields has uncovered potential therapeutic targets that look promising for disease control. Gliomas can now be modeled with fidelity and reproducibility using several transgenic and knockout strategies. Transgenic mouse models are facilitating the testing of various therapeutic strategies in vivo. Finally, the recognition of the putative brain tumor stem cell, the tumor initiating cell in brain cancer, provides an enticing target through which we could eliminate the source of the brain tumor with increased efficacy and less toxicity to normal tissues. In this review, we provide an up-to-date discussion of the many of key technologies and tools that are being used in molecular biology to advance our understanding of the biological behavior of human malignant gliomas.
Insights
Advances in molecular biology offer new hope for treating human gliomas, a complex brain cancer. Understanding genetic alterations and targeting brain tumor stem cells may lead to more effective therapies with fewer side effects.
Area of Science:
- Neuro-oncology
- Molecular biology
- Cancer genetics
Background:
- Human gliomas are the most common primary brain tumors, characterized by complexity and heterogeneity.
- Current treatments like surgery, radiation, and chemotherapy are limited by intrinsic resistance and diffuse infiltration.
- Recent molecular biology advances have significantly improved understanding of glioma initiation and progression.
Purpose of the Study:
- To review key technologies and tools in molecular biology for understanding human malignant gliomas.
- To discuss advancements in modeling gliomas and identifying novel therapeutic targets.
Main Methods:
- Review of current literature on molecular biology, genetics, and therapeutic strategies for gliomas.
- Discussion of transgenic and knockout mouse models for in vivo therapeutic testing.
- Exploration of the brain tumor stem cell concept as a therapeutic target.
Main Results:
- Malignant gliomas arise from specific genetic alterations affecting critical cellular pathways.
- Novel therapeutic targets are being identified through research into these genetic disruptions.
- Transgenic mouse models enable effective in vivo testing of potential treatments.
- Brain tumor stem cells represent a promising target for eradicating gliomas with reduced toxicity.
Conclusions:
- Molecular biology has transformed the understanding of human gliomas.
- Targeting genetic pathways and brain tumor stem cells holds significant promise for future glioma therapies.
- Advanced modeling techniques are crucial for developing and testing new treatment strategies.
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