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Published on: January 7, 2019
Multiple myeloma cells depend on the DDI2/NRF1-mediated proteasome stress response for survival
Tianzeng Chen1, Matthew Ho2, Jenna Briere3
1Amyloidosis Program, Division of Hematology, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA.
Abstract:
Multiple myeloma (MM) cells suffer from baseline proteotoxicity as the result of an imbalance between the load of misfolded proteins awaiting proteolysis and the capacity of the ubiquitin-proteasome system to degrade them. This intrinsic vulnerability is at the base of MM sensitivity to agents that perturb proteostasis, such as proteasome inhibitors (PIs), the mainstay of modern-day myeloma therapy. De novo and acquired PI resistance are important clinical limitations that adversely affect prognosis. The molecular mechanisms underpinning PI resistance are only partially understood, limiting the development of drugs that can overcome it. The transcription factor NRF1 is activated by the aspartic protease DNA damage inducible 1 homolog 2 (DDI2) upon proteasome insufficiency and governs proteasome biogenesis. In this article, we show that MM cells exhibit baseline NRF1 activation and are dependent upon DDI2 for survival. DDI2 knockout (KO) is cytotoxic for MM cells, both in vitro and in vivo. Protein structure-function studies show that DDI2 KO blocks NRF1 cleavage and nuclear translocation, causing impaired proteasome activity recovery upon irreversible proteasome inhibition and, thereby, increasing sensitivity to PIs. Add-back of wild-type, but not of catalytically dead DDI2, fully rescues these phenotypes. We propose that DDI2 is an unexplored promising molecular target in MM by disrupting the proteasome stress response and exacerbating proteotoxicity.
Insights
Multiple myeloma cells rely on DNA damage inducible 1 homolog 2 (DDI2) for survival. Inhibiting DDI2 increases sensitivity to proteasome inhibitors by disrupting the proteasome stress response.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- Multiple myeloma (MM) cells have high proteotoxic stress due to proteasome system imbalance.
- Proteasome inhibitors (PIs) are effective MM treatments, but resistance limits their use.
- Understanding PI resistance mechanisms is crucial for developing new therapies.
Purpose of the Study:
- To investigate the role of DNA damage inducible 1 homolog 2 (DDI2) in multiple myeloma.
- To determine if DDI2 is a potential therapeutic target for overcoming PI resistance.
Main Methods:
- DDI2 knockout (KO) in MM cells (in vitro and in vivo).
- Analysis of NRF1 activation, cleavage, and nuclear translocation.
- Assessment of proteasome activity recovery after PI treatment.
- DDI2 add-back experiments.
Main Results:
- MM cells exhibit baseline NRF1 activation and depend on DDI2 for survival.
- DDI2 KO is cytotoxic to MM cells and blocks NRF1 activation.
- DDI2 KO impairs proteasome activity recovery and increases MM cell sensitivity to PIs.
- Wild-type DDI2, but not catalytically dead DDI2, rescues these phenotypes.
Conclusions:
- DDI2 is essential for MM cell survival and proteasome stress response.
- Targeting DDI2 disrupts the proteasome stress response, exacerbating proteotoxicity in MM.
- DDI2 represents a promising molecular target for overcoming PI resistance in multiple myeloma.
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