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Runx2 Deficiency in Osteoblasts Promotes Myeloma Resistance to Bortezomib by Increasing TSP-1-Dependent TGFβ1
Chao Zhang1,2, Xiaoxuan Xu2, Timothy N Trotter2
1Department of Hematology, the First Affiliated Hospital of Sun Yat-Sen University, Guangzhou, China.
Abstract:
Multiple myeloma is a plasma cell malignancy that thrives in the bone marrow (BM). The proteasome inhibitor bortezomib is one of the most effective first-line chemotherapeutic drugs for multiple myeloma; however, 15% to 20% of high-risk patients do not respond to or become resistant to this drug and the mechanisms of chemoresistance remain unclear. We previously demonstrated that multiple myeloma cells inhibit Runt-related transcription factor 2 (Runx2) in pre- and immature osteoblasts (OB), and that this OB-Runx2 deficiency induces a cytokine-rich and immunosuppressive microenvironment in the BM. In the current study, we assessed the impact of OB-Runx2 deficiency on the outcome of bortezomib treatment using OB-Runx2+/+ and OB-Runx2-/- mouse models of multiple myeloma. In vitro and in vivo experiments revealed that OB-Runx2 deficiency induces multiple myeloma cell resistance to bortezomib via the upregulation of immunosuppressive myeloid-derived suppressor cells (MDSCs), downregulation of cytotoxic T cells, and activation of TGFβ1 in the BM. In multiple myeloma tumor-bearing OB-Runx2-/- mice, treatment with SRI31277, an antagonist of thrombospondin-1 (TSP-1)-mediated TGFβ1 activation, reversed the BM immunosuppression and significantly reduced tumor burden. Furthermore, treatment with SRI31277 combined with bortezomib alleviated multiple myeloma cell resistance to bortezomib-induced apoptosis caused by OB-Runx2 deficiency in cocultured cells and produced a synergistic effect on tumor burden in OB-Runx2-/- mice. Depletion of MDSCs by 5-fluorouracil or gemcitabine similarly reversed the immunosuppressive effects and bortezomib resistance induced by OB-Runx2 deficiency in tumor-bearing mice, indicating the importance of the immune environment for drug resistance and suggesting new strategies to overcome bortezomib resistance in the treatment of multiple myeloma.
Insights
Multiple myeloma chemoresistance is linked to bone marrow immune suppression caused by osteoblast Runt-related transcription factor 2 (Runx2) deficiency. Restoring immune balance overcomes bortezomib resistance in mice.
Area of Science:
- Hematology
- Immunology
- Oncology
Background:
- Multiple myeloma is a bone marrow malignancy.
- Bortezomib is a key treatment, but resistance occurs in 15-20% of high-risk patients.
- Osteoblast Runt-related transcription factor 2 (Runx2) deficiency creates an immunosuppressive bone marrow microenvironment.
Purpose of the Study:
- To investigate the impact of osteoblast Runx2 deficiency on bortezomib treatment outcomes.
- To elucidate the mechanisms of bortezomib resistance in multiple myeloma.
- To identify strategies to overcome bortezomib resistance.
Main Methods:
- Utilized OB-Runx2+/+ and OB-Runx2-/- mouse models of multiple myeloma.
- Conducted in vitro and in vivo experiments assessing drug response and immune cell populations.
- Administered bortezomib, TGFβ1 pathway antagonist SRI31277, and MDSC-depleting agents (5-fluorouracil, gemcitabine).
Main Results:
- OB-Runx2 deficiency induced bortezomib resistance by increasing immunosuppressive myeloid-derived suppressor cells (MDSCs), decreasing cytotoxic T cells, and activating TGFβ1.
- SRI31277 treatment reversed immunosuppression and reduced tumor burden in OB-Runx2-/- mice.
- Combined SRI31277 and bortezomib showed synergistic effects, overcoming resistance and reducing tumor burden.
Conclusions:
- Osteoblast Runx2 deficiency drives multiple myeloma chemoresistance through bone marrow immune dysregulation.
- Targeting TGFβ1 activation or depleting MDSCs can reverse immunosuppression and bortezomib resistance.
- Modulating the immune microenvironment offers promising strategies to overcome bortezomib resistance in multiple myeloma.
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