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Author Spotlight: Analyzing Bone Marrow Microenvironment in Murine Hematological Malignancies
Published on: November 10, 2023
Hypoxic Bone Marrow Stromal Cells Secrete miR-140-5p and miR-28-3p That Target SPRED1 to Confer Drug Resistance in
Hui Zhang1,2, Zhimin Du1,2,3, Chenggong Tu1,2,4
1Affiliated Cancer Hospital & Institute of Guangzhou Medical University, Guangzhou, China.
Abstract:
Bone marrow stromal cell (BMSC)-derived small extracellular vesicles (sEV) promote drug resistance to bortezomib in multiple myeloma cells. Elucidating the components of BMSC sEV that induce drug resistance in multiple myeloma cells could help identify strategies to overcome resistance. Considering the hypoxic nature of the myeloma microenvironment, we explored the role of hypoxia in regulating BMSC sEV cargo and investigated whether hypoxia-driven sEV miRNAs contribute to the drug resistance in multiple myeloma cells. Hypoxia increased the release of sEVs from BMSCs, and these sEVs more strongly attenuated bortezomib sensitivity in multiple myeloma cells than sEVs from BMSCs under normoxic conditions. RNA sequencing revealed that significantly elevated levels of miR-140-5p and miR-28-3p were enclosed in hypoxic BMSC-derived sEVs. Both miR-140-5p and miR-28-3p conferred bortezomib resistance in multiple myeloma cells by synergistically targeting SPRED1, a member of the Sprouty protein family that regulates MAPK activation. SPRED1 inhibition reduced sensitivity to bortezomib in multiple myeloma cells through activating MAPK-related pathways and significantly promoted multiple myeloma bortezomib resistance and tumor growth in a mouse model. These findings shed light on the role of hypoxia-induced miRNAs shuttled in BMSC-derived sEVs to multiple myeloma cells in inducing drug resistance and identify the miR-140-5p/miR-28-3p/SPRED1/MAPK pathway as a potential targetable axis for treating multiple myeloma.
Significance:
Hypoxia induces stromal cells to secrete extracellular vesicles with increased miR-140-5p and miR-28-3p that are transferred to multiple myeloma cells and drive drug resistance by increasing the MAPK signaling.
Insights
Hypoxia-induced extracellular vesicles from bone marrow stromal cells carry specific miRNAs that promote drug resistance in multiple myeloma by targeting the SPRED1/MAPK pathway.
Area of Science:
- Cell Biology
- Molecular Biology
- Oncology
Background:
- Bone marrow stromal cell (BMSC)-derived small extracellular vesicles (sEV) are implicated in promoting drug resistance in multiple myeloma.
- The hypoxic tumor microenvironment may influence BMSC sEV composition and function.
Purpose of the Study:
- To investigate the role of hypoxia in regulating BMSC sEV cargo.
- To determine if hypoxia-driven sEV miRNAs contribute to bortezomib resistance in multiple myeloma.
Main Methods:
- BMSCs were cultured under normoxic and hypoxic conditions.
- sEVs were isolated and characterized.
- RNA sequencing was performed on sEVs.
- Multiple myeloma cells were treated with sEVs and bortezomib.
- In vivo studies using a mouse model were conducted.
Main Results:
- Hypoxia increased sEV release from BMSCs, enhancing bortezomib resistance in multiple myeloma cells.
- Hypoxic BMSC-sEVs showed elevated levels of miR-140-5p and miR-28-3p.
- These miRNAs conferred bortezomib resistance by targeting SPRED1 and activating MAPK signaling.
- SPRED1 inhibition promoted multiple myeloma bortezomib resistance and tumor growth in vivo.
Conclusions:
- Hypoxia-induced miRNAs (miR-140-5p/miR-28-3p) in BMSC-sEVs contribute to multiple myeloma drug resistance.
- The miR-140-5p/miR-28-3p/SPRED1/MAPK pathway represents a potential therapeutic target for overcoming bortezomib resistance in multiple myeloma.
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