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Published on: May 10, 2022
Oxidative stress and proteasome inhibitors in multiple myeloma
Brittany C Lipchick1, Emily E Fink1, Mikhail A Nikiforov1
1Department of Cell Stress Biology, Roswell Park Cancer Institute, Buffalo, NY 14263, USA.
Abstract:
Multiple myeloma is a form of plasma cell neoplasm that accounts for approximately 10% of all hematological malignancies. Recently, several novel drugs have been discovered that almost doubled the overall survival of multiple myeloma patients. One of these drugs, the first-in-class proteasome inhibitor bortezomib (Velcade) has demonstrated remarkable response rates in multiple myeloma patients, and yet, currently this disease remains incurable. The major factor undermining the success of multiple myeloma treatment is a rapidly emerging resistance to the available therapy. Thus, the development of stand-alone or adjuvant anti-myeloma agents becomes of paramount importance. Overproduction of intracellular reactive oxygen species (ROS) often accompanies malignant transformation due to oncogene activation and/or enhanced metabolism in tumor cells. As a result, these cells possess higher levels of ROS and lower levels of antioxidant molecules compared to their normal counterparts. Unbalanced production of ROS leads to oxidative stress which, if left unchecked, could be toxic for the cell. In multiple myeloma cells where high rates of immunoglobulin synthesis is an additional factor contributing to overproduction of ROS, further induction of oxidative stress can be an effective strategy to cope with this disease. Here we will review the available data on the role of oxidative stress in the cytotoxicity of proteasome inhibitors and the use of ROS-inducing compounds as anti-myeloma agents.
Insights
Multiple myeloma treatment faces challenges due to drug resistance. Inducing oxidative stress (ROS) in cancer cells, especially those with high immunoglobulin production, offers a promising strategy for new anti-myeloma therapies.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Multiple myeloma, a plasma cell neoplasm, accounts for 10% of hematological malignancies.
- Novel drugs like bortezomib have improved survival, but resistance remains a major challenge.
- Cancer cells, including multiple myeloma, exhibit increased reactive oxygen species (ROS) production and oxidative stress.
Purpose of the Study:
- To review the role of oxidative stress in the efficacy of proteasome inhibitors.
- To explore the potential of ROS-inducing compounds as novel anti-myeloma agents.
Main Methods:
- Review of existing scientific literature on multiple myeloma, proteasome inhibitors, and oxidative stress.
- Analysis of data linking ROS levels to cancer cell survival and drug resistance.
Main Results:
- Proteasome inhibitors can induce oxidative stress, contributing to their cytotoxicity in multiple myeloma cells.
- Multiple myeloma cells, with their high immunoglobulin synthesis, are particularly susceptible to further ROS induction.
- Oxidative stress can be a critical factor in overcoming therapeutic resistance in multiple myeloma.
Conclusions:
- Targeting oxidative stress pathways presents a viable strategy for developing new multiple myeloma treatments.
- ROS-inducing agents, used alone or in combination, hold promise for overcoming drug resistance and improving patient outcomes.
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