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A Rapid Screening Workflow to Identify Potential Combination Therapy for GBM using Patient-Derived Glioma Stem Cells
Published on: March 28, 2021
Combinatorial approaches to effective therapy in glioblastoma (GBM): Current status and what the future holds
Sweety Asija1, Abhishek Chatterjee2,3, Sandhya Yadav2,3
1Department of Biosciences & Bioengineering, Indian Institute of Technology, Mumbai, India.
Abstract:
The aggressive and recurrent nature of glioblastoma is multifactorial and has been attributed to its biological heterogeneity, dysfunctional metabolic signaling pathways, rigid blood-brain barrier, inherent resistance to standard therapy due to the stemness property of the gliomas cells, immunosuppressive tumor microenvironment, hypoxia and neoangiogenesis which are very well orchestrated and create the tumor's own highly pro-tumorigenic milieu. Once the relay of events starts amongst these components, eventually it becomes difficult to control the cascade using only the balanced contemporary care of treatment consisting of maximal resection, radiotherapy and chemotherapy with temozolamide. Over the past few decades, implementation of contemporary treatment modalities has shown benefit to some extent, but no significant overall survival benefit is achieved. Therefore, there is an unmet need for advanced multifaceted combinatorial strategies. Recent advances in molecular biology, development of innovative therapeutics and novel delivery platforms over the years has resulted in a paradigm shift in gliomas therapeutics. Decades of research has led to emergence of several treatment molecules, including immunotherapies such as immune checkpoint blockade, oncolytic virotherapy, adoptive cell therapy, nanoparticles, CED and BNCT, each with the unique proficiency to overcome the mentioned challenges, present research. Recent years are seeing innovative combinatorial strategies to overcome the multifactorial resistance put forth by the GBM cell and its TME. This review discusses the contemporary and the investigational combinatorial strategies being employed to treat GBM and summarizes the evidence accumulated till date.
Insights
Glioblastoma (GBM) is aggressive due to multiple factors, resisting standard treatments. Novel combinatorial strategies combining advanced therapies are needed to improve patient survival.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Translational Medicine
Background:
- Glioblastoma (GBM) exhibits aggressive, recurrent behavior driven by biological heterogeneity, metabolic dysfunction, blood-brain barrier challenges, and therapy resistance.
- Current treatments (surgery, radiotherapy, temozolomide) offer limited survival benefits due to GBM's complex, pro-tumorigenic microenvironment.
- An unmet need exists for advanced, multifaceted combinatorial strategies to overcome GBM's multifactorial resistance.
Approach:
- This review synthesizes contemporary and investigational combinatorial strategies for glioblastoma treatment.
- It examines novel therapeutics and delivery platforms, including immunotherapies, oncolytic virotherapy, and nanoparticle-based approaches.
- The discussion focuses on overcoming challenges posed by the GBM tumor microenvironment (TME) and cellular resistance.
Key Points:
- Glioblastoma's multifactorial nature includes heterogeneity, stemness, immunosuppression, hypoxia, and neoangiogenesis.
- Standard treatments show limited efficacy, necessitating advanced combinatorial approaches.
- Emerging therapies like immunotherapy, oncolytic virotherapy, and nanotechnology offer new avenues.
Conclusions:
- Innovative combinatorial strategies are crucial for tackling glioblastoma's complex resistance mechanisms.
- Recent advances in molecular biology and delivery platforms are shifting gliomas therapeutics.
- Further research and clinical application of these combined strategies are essential for improving GBM patient outcomes.

