Rapid modification of the bone microenvironment following short-term treatment with Cabozantinib in vivo

Marie-Therese Haider1, Keith D Hunter2, Simon P Robinson3

  • 1Department of Oncology, University of Sheffield, Sheffield, UK.

Bone
|August 18, 2015
PubMed
Abstract

Insights

Cabozantinib (CBZ) rapidly and reversibly alters the bone microenvironment by affecting osteoblasts, osteoclasts, and bone marrow composition in vivo. These transient changes suggest a potential role for bone in mediating treatment responses.

Area of Science:

  • Oncology
  • Pharmacology
  • Bone Biology

Background:

  • Bone metastasis is a significant clinical challenge with limited treatment options.
  • Cabozantinib (CBZ) targets receptor tyrosine kinases like MET and VEGFR-2, showing activity in advanced prostate cancer with bone lesions.
  • The bone microenvironment's role in CBZ's effects is under investigation.

Purpose of the Study:

  • To characterize the short-term effects of cabozantinib on the bone microenvironment in vivo.
  • To assess how cabozantinib influences bone integrity, cell activity, and bone marrow composition in the absence of tumor.

Main Methods:

  • In vivo studies using male and female BALB/c nude mice treated with CBZ (30 mg/kg, 5× weekly) or control for 5 or 10 days.
  • Assessment of bone integrity (microCT), bone cell activity (PINP, TRAP ELISA), osteoblast/osteoclast numbers, growth plate cartilage, megakaryocytes, and bone marrow composition.
  • Longer-term treatment effects evaluated in NOD/SCID and beige SCID mice.

Main Results:

  • CBZ treatment significantly altered bone microenvironment: reduced osteoclasts, increased osteoblasts, and modified trabecular bone structure.
  • Observed significant elongation of the epiphyseal growth plate, particularly the hypertrophic chondrocyte zone.
  • CBZ induced increased megakaryocyte numbers, vascular ectasia, reduced bone marrow cellularity, and red blood cell extravasation.

Conclusions:

  • Short-term cabozantinib administration induces rapid and reversible changes in the bone microenvironment.
  • These findings highlight a potential role of the bone microenvironment in mediating cabozantinib's therapeutic effects.