Systemic PPARγ Antagonism Reduces Metastatic Tumor Progression in Adipocyte-Rich Bone in Excess Weight Male Rodents.
Anastasia GaculenkoGasper GregoricVanessa PoppLisa SeylerMark RingerKaterina KachlerZhengquan WuWadim KiselChristine HofbauerLorenz C HofbauerMichael UderLarissa Valor-MéndezTobias BäuerleAline BozecPublished in: Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research (2021)
Primary tumors are widely associated with an excess in body fat. The role of adipose tissue on tumor cell homing to bone is yet poorly defined. In this study, we aimed to assess whether bone colonization by tumor cells is favored by an adipocyte-rich bone marrow. We delineated the accompanying alterations of the bone microenvironment and established a treatment approach that interferes with high fat diet (HFD)-induced bone metastasis formation. We were able to show that adipocytes affect skeletal tumor growth in a metastatic model of breast cancer in male rats and melanoma in male mice as well as in human breast cancer bone biopsies. Indeed, HFD-induced bone marrow adiposity was accompanied by accelerated tumor progression and increased osteolytic lesions. In human bone metastases, bone marrow adiposity correlated with tumor cell proliferation. By antagonization of the adipocyte differentiation and storage pathway linked to the peroxisome proliferator-activated receptor gamma (PPARγ) with bisphenol-A-diglycidylether (BADGE), we were able to decelerate tumor progression and subsequent osteolytic damage in the bones of two distinct metastatic animal models exposed to HFD. Overall these data show that adipose tissue is a critical factor in bone metastases and cancer-induced bone loss. © 2021 The Authors. Journal of Bone and Mineral Research published by Wiley Periodicals LLC on behalf of American Society for Bone and Mineral Research (ASBMR).
Keyphrases
- adipose tissue
- high fat diet
- bone loss
- insulin resistance
- bone marrow
- bone mineral density
- soft tissue
- bone regeneration
- cell proliferation
- squamous cell carcinoma
- endothelial cells
- high glucose
- mesenchymal stem cells
- stem cells
- metabolic syndrome
- skeletal muscle
- type diabetes
- oxidative stress
- deep learning
- systematic review
- body composition
- lymph node metastasis