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Epigenetic mechanisms of cell adhesion-mediated drug resistance in multiple myeloma
Yusuke Furukawa1, Jiro Kikuchi2
1Division of Stem Cell Regulation, Center for Molecular Medicine, Jichi Medical University, 3311-1 Yakushiji, Shimotsuke, Tochigi, 329-0498, Japan. furuyu@jichi.ac.jp.
Abstract:
Multiple myeloma cells acquire the resistance to anti-cancer drugs through physical and functional interactions with the bone marrow microenvironment via two overlapping mechanisms. First, bone marrow stromal cells (BMSCs) produce soluble factors, such as interleukin-6 and insulin-like growth factor-1, to activate signal transduction pathways leading to drug resistance (soluble factor-mediated drug resistance). Second, BMSCs up-regulate the expression of cell cycle inhibitors, anti-apoptotic members of the Bcl-2 family and ABC drug transporters in myeloma cells upon direct adhesion [cell adhesion-mediated drug resistance (CAM-DR)]. Elucidation of the mechanisms underlying drug resistance may greatly contribute to the advancement of cancer therapies. Recent investigations, including ours, have revealed the involvement of epigenetic alterations in drug resistance especially CAM-DR. For example, we found that class I histone deacetylases (HDACs) determine the sensitivity of proteasome inhibitors and the histone methyltransferase EZH2 regulates the transcription of anti-apoptotic genes during the acquisition of CAM-DR by myeloma cells. In addition, another histone methyltransferase MMSET was shown to confer drug resistance to myeloma cells by facilitating DNA repair. These findings provide a rationale for the inclusion of epigenetic drugs, such as HDAC inhibitors and histone methylation modifiers, in combination chemotherapy for MM patients to increase the therapeutic index.
Insights
Multiple myeloma cells resist drugs via bone marrow interactions. Epigenetic modifications, like HDACs and EZH2, drive this resistance, suggesting epigenetic drugs could improve chemotherapy.
Area of Science:
- Cancer Biology
- Epigenetics
- Pharmacology
Background:
- Multiple myeloma cells develop drug resistance through interactions with the bone marrow microenvironment.
- Two main mechanisms are soluble factor-mediated drug resistance and cell adhesion-mediated drug resistance (CAM-DR).
Purpose of the Study:
- To elucidate the mechanisms of drug resistance in multiple myeloma, focusing on epigenetic alterations.
- To investigate the role of histone deacetylases (HDACs) and histone methyltransferases (EZH2, MMSET) in CAM-DR.
Main Methods:
- Investigated the impact of class I histone deacetylases (HDACs) on proteasome inhibitor sensitivity.
- Examined the role of histone methyltransferase EZH2 in regulating anti-apoptotic gene transcription during CAM-DR.
- Assessed the contribution of histone methyltransferase MMSET to drug resistance via DNA repair.
Main Results:
- Class I HDACs influence proteasome inhibitor sensitivity in myeloma cells.
- EZH2 regulates anti-apoptotic gene expression, contributing to CAM-DR.
- MMSET enhances myeloma cell drug resistance by promoting DNA repair.
Conclusions:
- Epigenetic alterations, particularly involving HDACs and histone methylation, are crucial in multiple myeloma drug resistance.
- Targeting epigenetic modifications with drugs like HDAC inhibitors and methylation modifiers offers a promising strategy for combination chemotherapy in multiple myeloma.
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