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Targeting oncometabolism to maximize immunotherapy in malignant brain tumors
Joshua D Bernstock1, Kyung-Don Kang2, Neil V Klinger3
1Department of Neurosurgery, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA. jbernstock@partners.org.
Abstract:
Brain tumors result in significant morbidity and mortality in both children and adults. Recent data indicate that immunotherapies may offer a survival benefit after standard of care has failed for malignant brain tumors. Modest results from several late phase clinical trials, however, underscore the need for more refined, comprehensive strategies that incorporate new mechanistic and pharmacologic knowledge. Recently, oncometabolism has emerged as an adjunct modality for combinatorial treatment approaches necessitated by the aggressive, refractory nature of high-grade glioma and other progressive malignant brain tumors. Manipulation of metabolic processes in cancer and immune cells that comprise the tumor microenvironment through controlled targeting of oncogenic pathways may be utilized to maximize the efficacy of immunotherapy and improve patient outcomes. Herein, we summarize preclinical and early phase clinical trial research of oncometabolism-based therapeutics that may augment immunotherapy by exploiting the biochemical and genetic underpinnings of brain tumors. We also examine metabolic pathways related to immune cells that target tumor cells, termed "tumor immunometabolism". Specifically, we focus on glycolysis and altered glucose metabolism, including glucose transporters, hexokinase, pyruvate dehydrogenase, and lactate dehydrogenase, glutamine, and we discuss targeting arginase, adenosine, and indoleamine 2,3-dioxygenase, and toll-like receptors. Lastly, we summarize future directions targeting metabolism in combination with emerging therapies such as oncolytic virotherapy, vaccines, and chimeric antigen receptor T cells.
Insights
Targeting cancer metabolism (oncometabolism) can enhance immunotherapy for brain tumors. This approach exploits tumor and immune cell metabolic pathways to improve treatment efficacy and patient survival.
Area of Science:
- Neuro-oncology
- Cancer Immunology
- Metabolic Pathways
Background:
- Malignant brain tumors cause significant morbidity and mortality.
- Immunotherapies show promise but require refined strategies for refractory tumors.
- Oncometabolism offers a new approach for combinatorial treatments in aggressive brain cancers.
Purpose of the Study:
- To review preclinical and early clinical research on oncometabolism-based therapeutics.
- To explore how targeting tumor and immune cell metabolism can augment immunotherapy.
- To identify future directions for metabolic targeting in brain tumor treatment.
Main Methods:
- Literature review of preclinical and early phase clinical trials.
- Analysis of metabolic pathways in brain tumor cells and the tumor microenvironment.
- Examination of key metabolic targets including glucose, glutamine, arginase, and adenosine.
Main Results:
- Oncometabolism manipulation can enhance immunotherapy efficacy.
- Targeting glycolysis, glutamine metabolism, and specific enzymes/receptors shows potential.
- Understanding tumor immunometabolism is crucial for treatment design.
Conclusions:
- Oncometabolism-based strategies hold promise for improving brain tumor immunotherapy.
- Combinatorial approaches targeting metabolism and immunotherapy are essential.
- Future research should focus on integrating metabolic therapies with emerging treatments like virotherapy and CAR T-cells.
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