Postnatal β-catenin deletion from Dmp1-expressing osteocytes/osteoblasts reduces structural adaptation to loading, but not periosteal load-induced bone formation

Bone. 2016 Jul:88:138-145. doi: 10.1016/j.bone.2016.04.028. Epub 2016 Apr 30.

Abstract

Mechanical signal transduction in bone tissue begins with load-induced activation of several cellular pathways in the osteocyte population. A key pathway that participates in mechanotransduction is Wnt/Lrp5 signaling. A putative downstream mediator of activated Lrp5 is the nucleocytoplasmic shuttling protein β-catenin (βcat), which migrates to the nucleus where it functions as a transcriptional co-activator. We investigated whether osteocytic βcat participates in Wnt/Lrp5-mediated mechanotransduction by conducting ulnar loading experiments in mice with or without chemically induced βcat deletion in osteocytes. Mice harboring βcat floxed loss-of-function alleles (βcat(f/f)) were bred to the inducible osteocyte Cre transgenic (10)(kb)Dmp1-CreERt2. Adult male mice were induced to recombine the βcat alleles using tamoxifen, and intermittent ulnar loading sessions were applied over the following week. Although adult-onset deletion of βcat from Dmp1-expressing cells reduced skeletal mass, the bone tissue was responsive to mechanical stimulation as indicated by increased relative periosteal bone formation rates in recombined mice. However, load-induced improvements in cross sectional geometric properties were compromised in recombined mice. The collective results indicate that the osteoanabolic response to loading can occur on the periosteal surface when β-cat levels are significantly reduced in Dmp1-expressing cells, suggesting that either (i) only low levels of β-cat are required for mechanically induced bone formation on the periosteal surface, or (ii) other additional downstream mediators of Lrp5 might participate in transducing load-induced Wnt signaling.

Keywords: Loading; Mechanical strain; Osteoporosis; Wnt; β-Catenin.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Absorptiometry, Photon
  • Adaptation, Physiological*
  • Alleles
  • Animals
  • Animals, Newborn
  • Bone Density
  • Cortical Bone / pathology
  • Extracellular Matrix Proteins / metabolism*
  • Gene Deletion*
  • Mice
  • Muscles / pathology
  • Osteoblasts / metabolism*
  • Osteocytes / metabolism*
  • Osteogenesis*
  • Periosteum / pathology
  • Periosteum / physiopathology*
  • Transgenes
  • Weight-Bearing
  • beta Catenin / metabolism*

Substances

  • Dmp1 protein, mouse
  • Extracellular Matrix Proteins
  • beta Catenin