Related Experiment Video
Updated: Mar 6, 2026

Stereotactic Adoptive Transfer of Cytotoxic Immune Cells in Murine Models of Orthotopic Human Glioblastoma Multiforme Xenografts
Published on: September 1, 2018
Insights into molecular therapy of glioma: current challenges and next generation blueprint
Y Rajesh1, Ipsita Pal1, Payel Banik1
1School of Medical Science and Technology, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
Abstract:
Glioma accounts for the majority of human brain tumors. With prevailing treatment regimens, the patients have poor survival rates. In spite of current development in mainstream glioma therapy, a cure for glioma appears to be out of reach. The infiltrative nature of glioma and acquired resistance substancially restrict the therapeutic options. Better elucidation of the complicated pathobiology of glioma and proteogenomic characterization might eventually open novel avenues for the design of more sophisticated and effective combination regimens. This could be accomplished by individually tailoring progressive neuroimaging techniques, terminating DNA synthesis with prodrug-activating genes, silencing gliomagenesis genes (gene therapy), targeting miRNA oncogenic activity (miRNA-mRNA interaction), combining Hedgehog-Gli/Akt inhibitors with stem cell therapy, employing tumor lysates as antigen sources for efficient depletion of tumor-specific cancer stem cells by cytotoxic T lymphocytes (dendritic cell vaccination), adoptive transfer of chimeric antigen receptor-modified T cells, and combining immune checkpoint inhibitors with conventional therapeutic modalities. Thus, the present review captures the latest trends associated with the molecular mechanisms involved in glial tumorigenesis as well as the limitations of surgery, radiation and chemotherapy. In this article we also critically discuss the next generation molecular therapeutic strategies and their mechanisms for the successful treatment of glioma.
Insights
Glioma treatment faces challenges due to tumor invasiveness and resistance. Novel combination therapies targeting molecular mechanisms offer new hope for improved glioma patient survival.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Genomics
Background:
- Glioma is the most common primary brain tumor, with current treatments yielding poor survival rates.
- The infiltrative nature and acquired resistance of gliomas significantly limit therapeutic efficacy.
- A deeper understanding of glioma pathobiology and proteogenomics is crucial for developing effective treatments.
Purpose of the Study:
- To review current glioma treatment limitations.
- To explore next-generation molecular therapeutic strategies for glioma.
- To discuss mechanisms for successful glioma treatment.
Main Methods:
- Review of current literature on glioma pathobiology and treatment.
- Analysis of molecular mechanisms in glial tumorigenesis.
- Critical discussion of emerging therapeutic strategies.
Main Results:
- Current standard therapies (surgery, radiation, chemotherapy) have significant limitations.
- Emerging strategies include gene therapy, miRNA targeting, and combination regimens.
- Advanced approaches involve immunotherapy, stem cell therapy, and targeted inhibitors.
Conclusions:
- Elucidating glioma's complex pathobiology is key to developing advanced therapies.
- Personalized combination regimens hold promise for overcoming therapeutic resistance.
- Next-generation molecular strategies offer new avenues for effective glioma treatment.

