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Targeted Disruption of Bone Marrow Stromal Cell-Derived Gremlin1 Limits Multiple Myeloma Disease Progression In Vivo
Kimberley C Clark1,2, Duncan R Hewett1,2, Vasilios Panagopoulos1,2
1Myeloma Research Laboratory, Adelaide Medical School, Faculty of Health and Medical Sciences, University of Adelaide, Adelaide, SA 5000, Australia.
Abstract:
In most instances, multiple myeloma (MM) plasma cells (PCs) are reliant on factors made by cells of the bone marrow (BM) stroma for their survival and growth. To date, the nature and cellular composition of the BM tumor microenvironment and the critical factors which drive tumor progression remain imprecisely defined. Our studies show that Gremlin1 (Grem1), a highly conserved protein, which is abundantly secreted by a subset of BM mesenchymal stromal cells, plays a critical role in MM disease development. Analysis of human and mouse BM stromal samples by quantitative PCR showed that GREM1/Grem1 expression was significantly higher in the MM tumor-bearing cohorts compared to healthy controls (p < 0.05, Mann-Whitney test). Additionally, BM-stromal cells cultured with 5TGM1 MM PC line expressed significantly higher levels of Grem1, compared to stromal cells alone (p < 0.01, t-test), suggesting that MM PCs promote increased Grem1 expression in stromal cells. Furthermore, the proliferation of 5TGM1 MM PCs was found to be significantly increased when co-cultured with Grem1-overexpressing stromal cells (p < 0.01, t-test). To examine the role of Grem1 in MM disease in vivo, we utilized the 5TGM1/KaLwRij mouse model of MM. Our studies showed that, compared to immunoglobulin G (IgG) control antibody-treated mice, mice treated with an anti-Grem1 neutralizing antibody had a decrease in MM tumor burden of up to 81.2% (p < 0.05, two-way ANOVA). The studies presented here demonstrate, for the first time, a novel positive feedback loop between MM PCs and BM stroma, and that inhibiting this vicious cycle with a neutralizing antibody can dramatically reduce tumor burden in a preclinical mouse model of MM.
Insights
Gremlin1 (Grem1) protein promotes multiple myeloma (MM) growth by fostering a feedback loop with bone marrow (BM) stromal cells. Inhibiting Grem1 significantly reduced MM tumor burden in a preclinical mouse model.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Multiple myeloma (MM) plasma cells (PCs) depend on bone marrow (BM) stroma for survival and growth.
- The BM tumor microenvironment's composition and factors driving MM progression are not fully understood.
- Gremlin1 (Grem1), a secreted protein, is implicated in MM disease development.
Purpose of the Study:
- To investigate the role of Gremlin1 (Grem1) in multiple myeloma (MM) pathogenesis.
- To elucidate the interaction between MM plasma cells (PCs) and bone marrow (BM) stromal cells involving Grem1.
- To evaluate the therapeutic potential of targeting Grem1 in MM.
Main Methods:
- Quantitative PCR analysis of Gremlin1 (Grem1) expression in human and mouse BM stromal samples.
- In vitro co-culture experiments with 5TGM1 MM plasma cell (PC) line and BM stromal cells.
- In vivo studies using the 5TGM1/KaLwRij mouse model of MM treated with anti-Grem1 neutralizing antibody.
Main Results:
- Gremlin1 (Grem1) expression was significantly higher in tumor-bearing MM cohorts compared to controls.
- MM plasma cells (PCs) induced higher Grem1 expression in bone marrow (BM) stromal cells.
- Grem1-overexpressing stromal cells significantly increased MM PC proliferation, and anti-Grem1 antibody treatment reduced MM tumor burden by up to 81.2% in vivo.
Conclusions:
- A novel positive feedback loop exists between multiple myeloma (MM) plasma cells (PCs) and bone marrow (BM) stroma mediated by Gremlin1 (Grem1).
- Targeting Grem1 with a neutralizing antibody significantly reduces tumor burden in a preclinical MM mouse model.
- Grem1 represents a potential therapeutic target for multiple myeloma (MM).
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