Cargando…

Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development

Calcium signaling plays a central role in the regulation of bone cells, though uncertainty remains with regard to the channels involved. In previous studies, we determined that the calcium channel Orai1 was required for the formation of multinucleated osteoclasts in vitro. To define the skeletal fun...

Descripción completa

Detalles Bibliográficos
Autores principales: Robinson, Lisa J., Mancarella, Salvatore, Songsawad, Duangrat, Tourkova, Irina L., Barnett, John B., Gill, Donald L., Soboloff, Jonathan, Blair, Harry C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3387291/
https://www.ncbi.nlm.nih.gov/pubmed/22546867
http://dx.doi.org/10.1038/labinvest.2012.72
_version_ 1782237089447804928
author Robinson, Lisa J.
Mancarella, Salvatore
Songsawad, Duangrat
Tourkova, Irina L.
Barnett, John B.
Gill, Donald L.
Soboloff, Jonathan
Blair, Harry C.
author_facet Robinson, Lisa J.
Mancarella, Salvatore
Songsawad, Duangrat
Tourkova, Irina L.
Barnett, John B.
Gill, Donald L.
Soboloff, Jonathan
Blair, Harry C.
author_sort Robinson, Lisa J.
collection PubMed
description Calcium signaling plays a central role in the regulation of bone cells, though uncertainty remains with regard to the channels involved. In previous studies, we determined that the calcium channel Orai1 was required for the formation of multinucleated osteoclasts in vitro. To define the skeletal functions of calcium release-activated calcium currents, we compared mice with targeted deletion of the calcium channel Orai1 to wild-type littermate controls, and examined differentiation and function of osteoblast and osteoclast precursors in vitro with and without Orai1 inhibition. Consistent with in vitro findings, Orai1(−/−) mice lacked multinucleated osteoclasts. Yet they did not develop osteopetrosis. Mononuclear cells expressing osteoclast products were found in Orai1(−/−) mice, and in vitro studies showed significantly reduced, but not absent, mineral resorption by the mononuclear osteoclast-like cells that form in culture from peripheral blood monocytic cells when Orai1 is inhibited. More prominent in Orai1(−/−) mice was a decrease in bone with retention of fetal cartilage. Micro-computed tomography showed reduced cortical ossification and thinned trabeculae in Orai1(−/−) animals compared to controls; bone deposition was markedly decreased in the knock-out. This suggested a previously unrecognized role for Orai1 within osteoblasts. Analysis of osteoblasts and precursors in Orai1(−/−) and control mice showed a significant decrease in alkaline phosphatase-expressing osteoblasts. In vitro studies confirmed that inhibiting Orai1 activity impaired differentiation and function of human osteoblasts, supporting a critical function for Orai1 in osteoblasts, in addition to its role as a regulator of osteoclast formation.
format Online
Article
Text
id pubmed-3387291
institution National Center for Biotechnology Information
language English
publishDate 2012
record_format MEDLINE/PubMed
spelling pubmed-33872912013-01-01 Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development Robinson, Lisa J. Mancarella, Salvatore Songsawad, Duangrat Tourkova, Irina L. Barnett, John B. Gill, Donald L. Soboloff, Jonathan Blair, Harry C. Lab Invest Article Calcium signaling plays a central role in the regulation of bone cells, though uncertainty remains with regard to the channels involved. In previous studies, we determined that the calcium channel Orai1 was required for the formation of multinucleated osteoclasts in vitro. To define the skeletal functions of calcium release-activated calcium currents, we compared mice with targeted deletion of the calcium channel Orai1 to wild-type littermate controls, and examined differentiation and function of osteoblast and osteoclast precursors in vitro with and without Orai1 inhibition. Consistent with in vitro findings, Orai1(−/−) mice lacked multinucleated osteoclasts. Yet they did not develop osteopetrosis. Mononuclear cells expressing osteoclast products were found in Orai1(−/−) mice, and in vitro studies showed significantly reduced, but not absent, mineral resorption by the mononuclear osteoclast-like cells that form in culture from peripheral blood monocytic cells when Orai1 is inhibited. More prominent in Orai1(−/−) mice was a decrease in bone with retention of fetal cartilage. Micro-computed tomography showed reduced cortical ossification and thinned trabeculae in Orai1(−/−) animals compared to controls; bone deposition was markedly decreased in the knock-out. This suggested a previously unrecognized role for Orai1 within osteoblasts. Analysis of osteoblasts and precursors in Orai1(−/−) and control mice showed a significant decrease in alkaline phosphatase-expressing osteoblasts. In vitro studies confirmed that inhibiting Orai1 activity impaired differentiation and function of human osteoblasts, supporting a critical function for Orai1 in osteoblasts, in addition to its role as a regulator of osteoclast formation. 2012-04-30 2012-07 /pmc/articles/PMC3387291/ /pubmed/22546867 http://dx.doi.org/10.1038/labinvest.2012.72 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Robinson, Lisa J.
Mancarella, Salvatore
Songsawad, Duangrat
Tourkova, Irina L.
Barnett, John B.
Gill, Donald L.
Soboloff, Jonathan
Blair, Harry C.
Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title_full Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title_fullStr Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title_full_unstemmed Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title_short Gene Disruption of the Calcium Channel Orai1 Results in Inhibition of Osteoclast and Osteoblast Differentiation and Impairs Skeletal Development
title_sort gene disruption of the calcium channel orai1 results in inhibition of osteoclast and osteoblast differentiation and impairs skeletal development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3387291/
https://www.ncbi.nlm.nih.gov/pubmed/22546867
http://dx.doi.org/10.1038/labinvest.2012.72
work_keys_str_mv AT robinsonlisaj genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT mancarellasalvatore genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT songsawadduangrat genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT tourkovairinal genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT barnettjohnb genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT gilldonaldl genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT soboloffjonathan genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment
AT blairharryc genedisruptionofthecalciumchannelorai1resultsininhibitionofosteoclastandosteoblastdifferentiationandimpairsskeletaldevelopment