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Protease inhibitors restore radiation-induced apoptosis to Bcl-2-expressing lymphoma cells
1Department of Experimental Radiation Oncology, The University of Texas M. D. Anderson Cancer Center, Houston, Texas 77030, USA.
Abstract:
The proteasome pathway is important for the turnover of many regulatory proteins. This pathway has recently become a target for antitumor agents and several research groups have demonstrated that inhibitors with specificities for the proteasome are potent apoptosis-inducing agents. Many mechanisms by which proteasome inhibitors exert their effects have been suggested, including inhibition of NF-kappa B activity and stabilization of the p53 tumor suppressor protein. We investigated the ability of inhibitors with specificities for the proteasome and for another protein degradation enzyme, calpain, to sensitize a murine B-cell lymphoma with constitutive NF-kappa B1 homodimer activity and high expression of Bcl-2 protein to radiation-induced apoptosis. Protease inhibitors tested were calpain inhibitor I, calpain inhibitor II, calpeptin, MG132, and Lactacystin. All five inhibitors induced apoptosis and sensitized cells to radiation despite the maintenance of Bcl-2 protein levels throughout the course of treatment. An electrophoretic migration shift assay for NF-kappa B1 activity provided evidence that reversal of NF-kappa B activity was not required for induction of cell death; however, p53 levels were elevated for all inhibitors tested. HL-60 cells, devoid of p53, could not be sensitized to radiation by MG132 treatment, suggesting that p53 was important for cell death induced by combined treatment with protease inhibitors and radiation. We concluded that protease inhibitors are capable of overcoming the protective effects of Bcl-2 to induce apoptosis and suggest that protease inhibitor treatment, when combined with ionizing radiation, leads to p53-mediated apoptosis.
Insights
Protease inhibitors induce apoptosis and sensitize cancer cells to radiation, overcoming protective proteins like Bcl-2. This combined treatment promotes p53-mediated cell death, offering a novel cancer therapy approach.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The proteasome pathway is crucial for regulatory protein turnover and a target for antitumor agents.
- Proteasome inhibitors are known to induce apoptosis and have potential anticancer effects.
- Mechanisms include NF-kappa B inhibition and p53 stabilization.
Purpose of the Study:
- To investigate if proteasome and calpain inhibitors can sensitize murine B-cell lymphoma to radiation-induced apoptosis.
- To explore the role of NF-kappa B activity and Bcl-2 protein levels in this sensitization process.
- To determine the involvement of the p53 tumor suppressor protein in combined protease inhibitor and radiation treatment.
Main Methods:
- Tested five protease inhibitors: calpain inhibitor I, calpain inhibitor II, calpeptin, MG132, and Lactacystin.
- Utilized electrophoretic migration shift assay to assess NF-kappa B1 activity.
- Examined p53 and Bcl-2 protein levels in treated cells.
- Used p53-deficient HL-60 cells to evaluate p53's role.
Main Results:
- All five inhibitors induced apoptosis and sensitized lymphoma cells to radiation, even with sustained Bcl-2 levels.
- NF-kappa B1 activity was not required for cell death induction.
- p53 protein levels increased in all inhibitor-treated cells.
- MG132 failed to sensitize p53-deficient HL-60 cells to radiation.
Conclusions:
- Protease inhibitors can overcome Bcl-2's protective effects to induce apoptosis.
- Combined protease inhibitor and ionizing radiation treatment results in p53-mediated apoptosis.
- This suggests a potential therapeutic strategy combining protease inhibitors with radiation for cancer treatment.