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January 12, 2018Blood Cancer Journal356 citationsOpen Access

Pathogenesis of bone disease in multiple myeloma: from bench to bedside

ETEvangelos TerposINIoannis Ntanasis‐StathopoulosMGMaria Gavriatopoulou

Key Points

  • To delineate the cellular and molecular mechanisms driving osteolytic bone disease in multiple myeloma and evaluate emerging therapeutic strategies.
  • Synthesized molecular and translational evidence on signaling cascades regulating the myeloma bone marrow microenvironment.
  • Assessed preclinical and clinical data regarding osteoclast activation, osteoblast inhibition, and osteocyte interactions.
  • Myeloma cells disrupt normal bone remodeling by activating osteoclasts and suppressing osteoblasts through dysregulation of RANK/RANKL/OPG, Notch, and Wnt signaling pathways.
  • Direct interactions between myeloma cells and osteocytes create a positive feedback loop that promotes sustained tumor survival and ongoing osteolysis even during disease plateau phases.
  • Targeted agents directed against key molecular crosstalk pathways represent promising therapeutic approaches currently under investigation to prevent progressive bone destruction.

Abstract

Osteolytic bone disease is the hallmark of multiple myeloma, which deteriorates the quality of life of myeloma patients, and it affects dramatically their morbidity and mortality. The basis of the pathogenesis of myeloma-related bone disease is the uncoupling of the bone-remodeling process. The interaction between myeloma cells and the bone microenvironment ultimately leads to the activation of osteoclasts and suppression of osteoblasts, resulting in bone loss. Several intracellular and intercellular signaling cascades, including RANK/RANKL/OPG, Notch, Wnt, and numerous chemokines and interleukins are implicated in this complex process. During the last years, osteocytes have emerged as key regulators of bone loss in myeloma through direct interactions with the myeloma cells. The myeloma-induced crosstalk among the molecular pathways establishes a positive feedback that sustains myeloma cell survival and continuous bone destruction, even when a plateau phase of the disease has been achieved. Targeted therapies, based on the better knowledge of the biology, constitute a promising approach in the management of myeloma-related bone disease and several novel agents are currently under investigation. Herein, we provide an insight into the underlying pathogenesis of bone disease and discuss possible directions for future studies.

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Cite This Study

Terpos et al. (2018) studied this question.

synapsesocial.com/papers/69d84cb1f4e559c61eae3617https://doi.org/10.1038/s41408-017-0037-4
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