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A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Protein kinase C targeting in antineoplastic treatment strategies
1Department of Medicine, Medical College of Virginia, Richmond 23298, USA. wjarvis@HSC.VCU.EDU
Abstract:
Neoplastic cell survival is governed by a balance between pro-apoptotic and anti-apoptotic signals. Noteworthy among several anti-apoptotic signaling elements is the protein kinase C (PKC) isoenzyme family, which mediates a central cytoprotective effect in the regulation of cell survival. Activation of PKC, and subsequent recruitment of numerous downstream elements such as the mitogen-activated protein kinase (MAPK) cascade, opposes initiation of the apoptotic cell death program by diverse cytotoxic stimuli. The understanding that the lethal actions of numerous antineoplastic agents are, in many instances, antagonized by cytoprotective signaling systems has been an important stimulus for the development of novel antineoplastic strategies. In this regard, inhibition of PKC, which has been shown to initiate apoptosis in a variety of malignant cell types, has recently been the focus of intense interest. Furthermore, there is accumulating evidence that selective targeting of PKC may prove useful in improving the therapeutic efficacy of established antineoplastic agents. Such chemosensitizing strategies can involve either (a) direct inhibition of PKC (e.g., following acute treatment with relatively specific inhibitors such as the synthetic sphingoid base analog safingol, or the novel staurosporine derivatives UCN-01 and CGP-41251) or (b) down-regulation (e.g., following chronic treatment with the non-tumor-promoting PKC activator bryostatin 1). In preclinical model systems, suppression of the cytoprotective function(s) of PKC potentiates the activity of cytotoxic agents (e.g., cytarabine) as well as ionizing radiation, and efforts to translate these findings into the clinical arena in humans are currently underway. Although the PKC-driven cytoprotective signaling systems affected by these treatments have not been definitively characterized, interference with PKC activity has been associated with loss of the mitogen-activated protein kinase (MAPK) response. Accordingly, recent pre-clinical studies have demonstrated that pharmacological disruption of the primary MEK-ERK module can mimic the chemopotentiating and radiopotentiating actions of PKC inhibition and/or down-regulation.
Insights
Targeting protein kinase C (PKC) can enhance cancer treatments by inhibiting its survival signals. Suppressing PKC activity, alongside chemotherapy or radiation, shows promise in preclinical models for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Neoplastic cell survival relies on a balance of pro- and anti-apoptotic signals.
- Protein kinase C (PKC) family members are key regulators of cell survival, mediating cytoprotective effects.
- Activation of PKC and downstream signaling pathways like MAPK can counteract apoptosis induced by cytotoxic agents.
Purpose of the Study:
- To explore the role of protein kinase C (PKC) in neoplastic cell survival and its potential as a therapeutic target.
- To investigate strategies for inhibiting or down-regulating PKC to enhance the efficacy of antineoplastic agents.
- To examine the link between PKC activity, MAPK signaling, and chemosensitization.
Main Methods:
- Review of existing literature on PKC signaling in cancer.
- Analysis of preclinical studies involving PKC inhibitors (e.g., safingol, UCN-01, CGP-41251) and activators (e.g., bryostatin 1).
- Investigation of the effects of PKC modulation on the response to cytotoxic agents and ionizing radiation, including analysis of MAPK pathway involvement.
Main Results:
- Inhibition or down-regulation of PKC can promote apoptosis in various cancer cell types.
- Suppression of PKC's cytoprotective functions potentiates the activity of chemotherapeutic agents (e.g., cytarabine) and ionizing radiation in preclinical models.
- Interference with PKC activity is associated with a diminished mitogen-activated protein kinase (MAPK) response, and MEK-ERK pathway disruption mimics PKC inhibition's effects.
Conclusions:
- Targeting PKC offers a promising strategy to overcome resistance to cancer therapies.
- PKC inhibition or down-regulation can act as a chemosensitizing and radiosensitizing approach.
- Further clinical translation of PKC-targeting strategies is warranted to improve cancer treatment outcomes.
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