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Published on: September 26, 2016
Molecular mechanisms of breast cancer metastases to bone
Theresa A Guise1, Wende M Kozlow, Ailleen Heras-Herzig
1Division of Endocrinology and Metabolism, Department of Medicine, University of Virginia, Charlottesville, VA 22908, USA.
Abstract:
Bone metastases lead to hypercalcemia, bone pain, fractures, and nerve compression. They cause increased morbidity and mortality in patients with advanced breast cancer. Animal models reproduce many of the features seen in patients with breast cancer and permit identification of tumor- and bone-derived factors important in skeletal metastasis. These factors provide novel targets for therapeutic interventions. Specific tumor-bone molecular interactions mediated by these factors drive a vicious cycle that perpetuates skeletal metastases. In breast cancer, osteolytic metastases are most common, but mixed and osteoblastic metastases occur in a significant number of patients. Parathyroid hormone-related protein is a common osteolytic factor, and vascular endothelial growth factor and interleukins 8 and 11 also contribute. Osteoblastic metastases can be caused by tumor-secreted endothelin-1 (ET-1), but there are a variety of other potential osteoblastic factors. Stimulation of osteoblasts can paradoxically increase osteoclast function, as bone-synthesizing osteoblasts are the main regulators of bone-destroying osteoclasts. Coexpression of osteolytic and osteoblastic factors can thus produce mixed metastases or increased osteolysis. Cancer treatments, especially sex steroid deprivation therapies, stimulate bone loss. Bone resorption results in the release of bone growth factors, which may unintentionally increase the formation of bone metastases by activating the vicious cycle. Clinically approved bisphosphonates prevent bone resorption and reduce the release of bone growth factors. Parathyroid hormone-related protein-neutralizing antibody, inhibitors of the receptor activator of nuclear factor-kB ligand pathway, and ET-1 receptor antagonists are in clinical trials. These agents act on bone cells rather than tumor cells. Recent experiments identify new potential targets for prevention of bone metastases.
Insights
Bone metastases in breast cancer create a vicious cycle, driving pain and fractures. Novel therapeutic targets are emerging to disrupt these tumor-bone interactions and prevent skeletal metastasis progression.
Area of Science:
- Oncology
- Skeletal Biology
- Cancer Metastasis
Background:
- Bone metastases significantly increase morbidity and mortality in advanced breast cancer patients.
- These metastases cause hypercalcemia, bone pain, fractures, and nerve compression.
- Animal models are crucial for understanding the molecular mechanisms of skeletal metastasis.
Purpose of the Study:
- To identify key tumor- and bone-derived factors driving skeletal metastasis in breast cancer.
- To explore novel therapeutic targets for preventing and treating bone metastases.
- To elucidate the molecular interactions perpetuating the vicious cycle of bone metastasis.
Main Methods:
- Utilizing animal models to study breast cancer bone metastasis.
- Analyzing molecular interactions between tumor cells and bone microenvironment.
- Reviewing current and experimental therapeutic strategies targeting bone metastasis.
Main Results:
- Specific molecular interactions between tumor and bone factors create a self-perpetuating cycle.
- Osteolytic factors like parathyroid hormone-related protein and osteoblastic factors such as endothelin-1 are implicated.
- Cancer treatments can inadvertently stimulate bone loss and metastasis formation.
- Bisphosphonates, PTHrP-neutralizing antibodies, and ET-1 antagonists show therapeutic potential.
Conclusions:
- Understanding tumor-bone molecular crosstalk is essential for developing effective therapies.
- Targeting specific molecular pathways offers new strategies for preventing bone metastases.
- Emerging therapies acting on bone cells show promise in clinical trials for managing bone metastases.
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