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A Three-dimensional Tissue Culture Model to Study Primary Human Bone Marrow and its Malignancies
Published on: March 8, 2014
Osteoblastogenesis and tumor growth in myeloma
1Myeloma Institute for Research and Therapy, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA. yaccobyshmuel@uams.edu
Abstract:
Myeloma is associated with suppression of osteoblastogenesis, consequentially resulting in increased osteoclast activity and induction of typical osteolytic bone disease. The molecular mechanisms by which myeloma cells suppress osteoblastogenesis and the consequences of increased osteoblast activity on myeloma cell growth have been partially delineated only recently. Reduced osteoblastogenesis is a consequence of abnormal properties and impaired osteogenic potential of osteoprogenitor cells from myeloma patients and is also the result of production of multiple osteoblastogenesis inhibitors by myeloma cells and by microenvironmental cells within the myelomatous bone. Nevertheless, novel osteoblast-activating agents (e.g. proteasome inhibitor bortezomib) are capable of inducing bone formation in myeloma animal models and clinically. These agents induce increased osteoblast activity, often coupled with a concomitant reduction in osteoclastogenesis, that is strongly associated with reduced myeloma tumor burden. In vitro, osteoblasts, in contrast to osteoclasts, attenuate the growth of myeloma cells from a large subset of patients; potential molecular mechanisms are discussed. These studies suggest that myeloma cells suppress osteoblastogenesis to their advantage and that increased osteoblast activity is a promising approach to treat myeloma bone disease and simultaneously control myeloma development and progression.
Insights
Multiple myeloma causes bone loss by suppressing bone-forming cells. Activating these cells shows promise for treating myeloma bone disease and reducing tumor burden.
Area of Science:
- Oncology
- Bone Biology
- Cancer Therapeutics
Background:
- Multiple myeloma (MM) is characterized by osteolytic bone lesions, driven by an imbalance favoring bone resorption over formation.
- MM cells and the bone microenvironment actively suppress osteoblastogenesis, contributing to disease progression.
Purpose of the Study:
- To elucidate the mechanisms by which myeloma cells inhibit osteoblastogenesis.
- To investigate the impact of osteoblast activation on myeloma cell growth and tumor burden.
Main Methods:
- Review of molecular mechanisms underlying myeloma-induced osteoblast suppression.
- Analysis of data from preclinical models and clinical studies of osteoblast-activating agents, including bortezomib.
- In vitro assessment of osteoblast-myeloma cell interactions.
Main Results:
- Myeloma impairs osteoblastogenesis via intrinsic osteoprogenitor defects and extrinsic inhibitory factors.
- Osteoblast-activating agents (e.g., bortezomib) promote bone formation and reduce myeloma tumor burden in vivo.
- Osteoblasts can inhibit the growth of a subset of myeloma cells in vitro.
Conclusions:
- Myeloma cells exploit osteoblast suppression for their advantage.
- Enhancing osteoblast activity represents a viable therapeutic strategy for managing myeloma bone disease and controlling cancer progression.
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