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  2. Acidification of the osteoclastic resorption compartment provides insight into the coupling of bone formation to bone resorption

Acidification of the osteoclastic resorption compartment provides insight into the coupling of bone formation to bone resorption

  • Am J Pathol. 2005 Feb;166(2):467-76. doi: 10.1016/S0002-9440(10)62269-9.
Morten A Karsdal 1 Kim Henriksen Mette G Sørensen Jeppe Gram Sophie Schaller Morten H Dziegiel Anne-Marie Heegaard Palle Christophersen Thomas J Martin Claus Christiansen Jens Bollerslev
Affiliations

Affiliation

  • 1 Nordic Bioscience A/S, Herlev Hovedgade 207, DK-2730 Herlev, Denmark. mk@nordicbioscience.com
Abstract

Patients with defective osteoclastic acidification have increased numbers of osteoclasts, with decreased resorption, but bone formation that remains unchanged. We demonstrate that osteoclast survival is increased when acidification is impaired, and that impairment of acidification results in inhibition of bone resorption without inhibition of bone formation. We investigated the role of acidification in human osteoclastic resorption and life span in vitro using inhibitors of chloride channels (NS5818/NS3696), the Proton Pump (bafilomycin) and Cathepsin K. We found that bafilomycin and NS5818 dose dependently inhibited acidification of the osteoclastic resorption compartment and bone resorption. Inhibition of bone resorption by inhibition of acidification, but not Cathepsin K inhibition, augmented osteoclast survival, which resulted in a 150 to 300% increase in osteoclasts compared to controls. We investigated the effect of inhibition of osteoclastic acidification in vivo by using the rat ovariectomy model with twice daily oral dosing of NS3696 at 50 mg/kg for 6 weeks. We observed a 60% decrease in resorption (DPYR), increased tartrate-resistant Acid Phosphatase levels, and no effect on bone formation evaluated by osteocalcin. We speculate that attenuated acidification inhibits dissolution of the inorganic phase of bone and results in an increased number of nonresorbing osteoclasts that are responsible for the coupling to normal bone formation. Thus, we suggest that acidification is essential for normal bone remodeling and that attenuated acidification leads to uncoupling with decreased bone resorption and unaffected bone formation.

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