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Published on: February 8, 2017
Recent advances in understanding brain cancer metabolomics: a review
Anirban Goutam Mukherjee1, Abilash Valsala Gopalakrishnan2, Rama Jayaraj3,4
1Department of Biomedical Sciences, School of Bio-Sciences and Technology, Vellore Institute of Technology (VIT), Vellore, 632014, Tamil Nadu, India.
Abstract:
Regardless of the significant progress made in surgical techniques and adjuvant therapies, brain tumors are a major contributor to cancer-related morbidity and mortality in both pediatric and adult populations. Gliomas represent a significant proportion of cerebral neoplasms, exhibiting diverse levels of malignancy. The etiology and mechanisms of resistance of this malignancy are inadequately comprehended, and the optimization of patient diagnosis and prognosis is a challenge due to the diversity of the disease and the restricted availability of therapeutic options. Metabolomics refers to the comprehensive analysis of endogenous and exogenous small molecules, both in a targeted and untargeted manner, that enables the characterization of an individual's phenotype and offers valuable insights into cellular activity, particularly in the context of cancer biology, including brain tumor biology. Metabolomics has garnered attention in current years due to its potential to facilitate comprehension of the dynamic spatiotemporal regulatory network of enzymes and metabolites that enables cancer cells to adapt to their environment and foster the development of tumors. Metabolic changes are widely acknowledged as a significant characteristic for tracking the advancement of diseases, treatment efficacy, and identifying novel molecular targets for successful medical management. Metabolomics has emerged as an exciting area for personalized medicine and drug discovery, utilizing advanced analytical techniques such as nuclear magnetic resonance spectroscopy (MRS) and mass spectrometry (MS) to achieve high-throughput analysis. This review examines and highlights the latest developments in MRS, MS, and other technologies in studying human brain tumor metabolomics.
Insights
Metabolomics offers new insights into brain tumor biology and progression. This review highlights advancements in techniques like nuclear magnetic resonance spectroscopy and mass spectrometry for studying brain tumors.
Area of Science:
- Biochemistry
- Oncology
- Neuroscience
Background:
- Brain tumors, including gliomas, remain a significant cause of cancer morbidity and mortality.
- Understanding tumor etiology, resistance mechanisms, and improving diagnosis/prognosis are challenging due to disease diversity and limited therapies.
- Metabolomics provides a comprehensive analysis of small molecules, revealing cellular phenotypes and insights into cancer biology.
Purpose of the Study:
- To review recent advancements in metabolomics for brain tumor research.
- To highlight the application of techniques like MRS and MS in understanding brain tumor metabolism.
- To explore the potential of metabolomics in personalized medicine and drug discovery for brain tumors.
Main Methods:
- Review of current literature on metabolomics in brain tumor research.
- Focus on advanced analytical techniques including Nuclear Magnetic Resonance Spectroscopy (MRS) and Mass Spectrometry (MS).
- Discussion of targeted and untargeted metabolomic approaches.
Main Results:
- Metabolomics aids in understanding the dynamic regulatory networks enabling cancer cell adaptation and tumor development.
- Metabolic alterations are key indicators of disease progression and treatment effectiveness.
- Metabolomics facilitates the identification of novel molecular targets for brain tumor management.
Conclusions:
- Metabolomics is a powerful tool for deciphering brain tumor biology and heterogeneity.
- Advancements in MRS, MS, and other technologies are crucial for high-throughput metabolomic analysis.
- Metabolomics holds significant promise for personalized medicine and the development of new brain tumor therapies.

