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Targeting protein kinase C: new therapeutic opportunities against high-grade malignant gliomas?
A B da Rocha1, D R A Mans, A Regner
1South-American Office for Anticancer Drug Development (SOAD), Comprehensive Cancer Center, Lutheran University of Brazil, Canoas, RS, Brazil. brondani@terra.com.br
Abstract:
A large body of evidence suggests that the abnormal phenotype of neoplastic astrocytes, including their excessive proliferation rate and high propensity to invade surrounding tissues, results from mutations in critical genes involved in key cellular events. These genetic alterations can affect cell-surface-associated receptors, elements of signaling pathways, or components of the cell cycle clock, conferring a gain or a loss of relevant metabolic functions of the cells. The understanding of such phenomena may allow the development of more efficacious forms of cancer treatment. Examples are therapies specifically directed against overexpressed epidermal growth factor receptor, hyperactive Ras, excessively stimulated Raf-1, overproduced ornithine decarboxylase, or aberrantly activated cyclin-dependent kinases. The applicability of some of these approaches is now being assessed in patients suffering from primary malignant central nervous system tumors that are not amenable to current therapeutic modalities. Another potentially useful therapeutic strategy against such tumors involves the inhibition of hyperactive or overexpressed protein kinase C (PKC). This strategy is justified by the decrease in cell proliferation and invasion following inhibition of the activity of this enzyme observed in preclinical glioma models. Thus, interference with PKC activity may represent a novel form of experimental cancer treatment that may simultaneously restrain the hyperproliferative state and the invasive capacity of high-grade malignant gliomas without inducing the expected toxicity of classical cytotoxic agents. Of note, the experimental use of PKC-inhibiting agents in patients with refractory high-grade malignant gliomas has indeed led to some clinical responses. The present paper reviews the current status of the biochemistry and molecular biology of PKC, as well as the possibilities for developing novel anti-PKC-based therapies for central nervous system malignancies.
Insights
Targeting protein kinase C (PKC) offers a novel therapeutic strategy for high-grade malignant gliomas. Inhibiting PKC may reduce tumor proliferation and invasion, showing promise in clinical trials for central nervous system malignancies.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Genetics
Background:
- Neoplastic astrocytes exhibit abnormal proliferation and invasion due to genetic mutations affecting cellular signaling and cell cycle regulation.
- Understanding these genetic alterations is crucial for developing targeted cancer therapies for central nervous system (CNS) tumors.
- Current therapeutic options for malignant CNS tumors are limited, necessitating novel treatment strategies.
Purpose of the Study:
- To review the current understanding of protein kinase C (PKC) biochemistry and molecular biology.
- To explore the potential of inhibiting PKC as a novel therapeutic strategy for CNS malignancies.
- To discuss the development of anti-PKC-based therapies for brain tumors.
Main Methods:
- Review of existing scientific literature on PKC, glioma models, and targeted therapies.
- Analysis of preclinical data demonstrating the effects of PKC inhibition on glioma cell proliferation and invasion.
- Examination of clinical trial results for PKC-inhibiting agents in patients with refractory high-grade gliomas.
Main Results:
- Inhibition of PKC activity in preclinical glioma models significantly decreased cell proliferation and invasion.
- Experimental PKC-inhibiting agents have shown clinical responses in patients with refractory high-grade malignant gliomas.
- PKC inhibition presents a potential strategy to restrain hyperproliferation and invasion in gliomas with reduced toxicity compared to cytotoxic agents.
Conclusions:
- Interference with PKC activity represents a promising experimental cancer treatment for high-grade malignant gliomas.
- Targeting PKC may simultaneously address the hyperproliferative and invasive characteristics of these tumors.
- Further development of anti-PKC therapies holds potential for treating CNS malignancies.