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Unlocking therapeutic potential: Exploring nuclear receptors in brain cancer treatment
Sujitha Jayaprakash1, Hiu Yan Lam2,3, Ravichandran Vishwa1
1Cancer Biology Laboratory, Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati, Assam 781039, India.
Abstract:
Brain cancer remains among the most lethal malignancies worldwide, with approximately 321,476 new cases and 248,305 deaths reported globally in 2022. The treatment of malignant brain tumors presents substantial clinical challenges, primarily due to their resistance to standard therapeutic approaches. Despite decades of intensive research, effective treatment strategies for brain cancer are still lacking. Nuclear receptors (NRs), a superfamily of ligand-activated transcription factors, regulate a broad range of physiological processes including metabolism, immunity, stress response, reproduction, and cellular differentiation. Increasing evidence highlights the involvement of NRs in oncogenesis, with several members demonstrating altered expression and function in brain tumors. Aberrations in NR signaling, encompassing receptors such as androgen receptors, estrogen receptors, estrogen-related receptors, glucocorticoid receptors, NR subfamily 4 group A, NR subfamily 1 group D member 2, NR subfamily 5 group A member 2, NR subfamily 2 group C member 2, liver X receptors, peroxisome-proliferator activated receptors, progesterone receptors, retinoic acid receptors, NR subfamily 2 group E member 1, thyroid hormone receptors, vitamin D receptors, and retinoid X receptors, have been implicated in promoting hallmark malignant phenotypes, including enhanced survival, proliferation, invasion, migration, metastasis, and resistance to therapy. This review aims to explore the roles of key NRs in brain cancer, with an emphasis on their prognostic significance, and to evaluate the therapeutic potential of targeting these receptors using selective agonists or antagonists.
Insights
Brain cancer is a deadly disease with few effective treatments. Nuclear receptors (NRs) are implicated in brain tumor growth and resistance to therapy, offering potential new treatment targets.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Brain cancer is a leading cause of cancer death globally, with limited treatment options.
- Nuclear receptors (NRs) are crucial regulators of cellular processes, and their dysregulation is increasingly linked to cancer.
- Specific NR aberrations promote aggressive brain tumor characteristics, including survival, proliferation, and therapy resistance.
Purpose of the Study:
- To review the role of key nuclear receptors (NRs) in brain cancer development and progression.
- To examine the prognostic significance of NRs in malignant brain tumors.
- To evaluate the therapeutic potential of targeting NRs in brain cancer.
Main Methods:
- Literature review of studies investigating nuclear receptors in brain cancer.
- Analysis of NR expression and function in various brain tumor types.
- Evaluation of preclinical and clinical data on NR-targeted therapies.
Main Results:
- Aberrant NR signaling contributes to hallmark cancer phenotypes in brain tumors.
- Several NRs show altered expression and are associated with patient prognosis.
- Targeting specific NRs with agonists or antagonists demonstrates therapeutic promise in preclinical models.
Conclusions:
- Nuclear receptors play a significant role in brain cancer pathogenesis.
- NRs represent promising prognostic biomarkers and therapeutic targets for brain malignancies.
- Further research into NR-targeted therapies could lead to improved treatment strategies for brain cancer patients.
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