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Interstitial collagenase activity stimulates the formation of actin rings and ruffled membranes in mouse marrow osteoclasts

  • L. S. Holliday
  • , H. G. Welgus
  • , J. Hanna
  • , B. S. Lee
  • , M. Lu
  • , J. J. Jeffrey
  • , S. L. Gluck

Research output: Contribution to journalArticlepeer-review

Abstract

Interstitial collagenase activity stimulates bone resorption by mouse marrow osteoclasts [1]. Here, we show that collagenase activity promotes bone resorption by activating adherent osteoclasts to resorb bone. Inhibition of interstitial collagenase activity, either with peptidomimetic hydroxymates or with a specific anti-interstitial collagenase inhibiting antibody, reduced bone resorption by 73-92%. Equal numbers of osteoclasts adhered to bone in the presence of collagenase inhibitors and osteoclast survival was unaffected. In contrast, formation of actin rings and polarization of the vacuolar-H+-ATPase (V-ATPase) to ruffled membranes, two indicators of osteoclast activation, were decreased by inhibiting collagenase activity and stimulated in the presence of cleaved or heat-denatured type I collagen in proportion to increases and decreases of bone resorptive activity. Addition of excess recombinant osteoprotegerin-ligand to cultures did not restore bone resorption in the presence of interstitial collagenase inhibitors. These data support the hypothesis that cleaved collagen stimulates osteoclastic bone resorption by triggering cytoskeletal reorganization and transport of V-ATPase from cytoplasmic stores to ruffled membranes.

Original languageEnglish
Pages (from-to)206-214
Number of pages9
JournalCalcified Tissue International
Volume72
Issue number3
DOIs
StatePublished - Mar 1 2003

Keywords

  • Actin
  • Interstitial collagenase
  • MMP13
  • Osteoclast
  • V-ATPase

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