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Exploration of Involved Key Genes and Signaling Diversity in Brain Tumors
Mojdeh Mahdian Nasser1, Parvin Mehdipour2
1Department of Medical Genetics, School of Medicine, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Brain tumors are becoming a major cause of death. The classification of brain tumors has gone through restructuring with regard to some criteria such as the presence or absence of a specific genetic alteration in the 2016 central nervous system World Health Organization update. Two categories of genes with a leading role in tumorigenesis and cancer induction include tumor suppressor genes and oncogenes; tumor suppressor genes are inactivated through a variety of mechanisms that result in their loss of function. As for the oncogenes, overexpression and amplification are the most common mechanisms of alteration. Important cell cycle genes such as p53, ATM, cyclin D2, and Rb have shown altered expression patterns in different brain tumors such as meningioma and astrocytoma. Some genes in signaling pathways have a role in brain tumorigenesis. These pathways include hedgehog, EGFR, Notch, hippo, MAPK, PI3K/Akt, and WNT signaling. It has been shown that telomere length in some brain tumor samples is shortened compared to that in normal cells. As the shortening of telomere length triggers chromosome instability early in brain tumors, it could lead to initiation of cancer. On the other hand, telomerase activity was positive in some brain tumors. It is suggestive that telomere length and telomerase activity are important diagnostic markers in brain tumors. This review focuses on brain tumors with regard to the status of oncogenes, tumor suppressors, cell cycle genes, and genes in signaling pathways as well as the role of telomere length and telomerase in brain tumors.
Insights
Brain tumor classification is evolving. This review examines oncogenes, tumor suppressors, cell cycle genes, signaling pathways, and telomere length/telomerase activity in brain tumors for diagnostic insights.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Genetics
Background:
- Brain tumors represent a significant cause of mortality, with evolving classification systems.
- Genetic alterations, including oncogenes and tumor suppressor genes, are key drivers of brain tumorigenesis.
- Altered expression of cell cycle genes (e.g., p53, ATM) and signaling pathways (e.g., EGFR, WNT) are implicated in brain tumor development.
Purpose of the Study:
- To review the status of oncogenes, tumor suppressors, cell cycle genes, and signaling pathways in brain tumors.
- To explore the role of telomere length and telomerase activity in brain tumorigenesis and diagnosis.
Main Methods:
- Literature review of studies on gene expression and alterations in brain tumors.
- Analysis of research on cell cycle regulation and signaling pathway involvement.
- Examination of data on telomere length and telomerase activity in brain tumor samples.
Main Results:
- Specific genes like p53, ATM, cyclin D2, and Rb show altered expression in brain tumors.
- Aberrations in signaling pathways (hedgehog, EGFR, Notch, hippo, MAPK, PI3K/Akt, WNT) contribute to brain tumorigenesis.
- Telomere shortening and positive telomerase activity are observed in brain tumors, suggesting diagnostic potential.
Conclusions:
- Understanding genetic alterations, cell cycle regulation, and signaling pathways is crucial for brain tumor research.
- Telomere length and telomerase activity may serve as important diagnostic markers for brain tumors.
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