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Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption

Bone remodeling is intrinsically regulated by cell signaling molecules. The Protein Kinase C (PKC) family of serine/threonine kinases is involved in multiple signaling pathways including cell proliferation, differentiation, apoptosis and osteoclast biology. However, the precise involvement of indivi...

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Autores principales: Khor, Ee Cheng, Abel, Tamara, Tickner, Jennifer, Chim, Shek Man, Wang, Cathy, Cheng, Taksum, Ng, Benjamin, Ng, Pei Ying, Teguh, Dian Astari, Kenny, Jacob, Yang, Xiaohong, Chen, Honghui, Nakayama, Keiichi I., Nakayama, Keiko, Pavlos, Nathan, Zheng, Ming H., Xu, Jiake
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3738588/
https://www.ncbi.nlm.nih.gov/pubmed/23951014
http://dx.doi.org/10.1371/journal.pone.0070815
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author Khor, Ee Cheng
Abel, Tamara
Tickner, Jennifer
Chim, Shek Man
Wang, Cathy
Cheng, Taksum
Ng, Benjamin
Ng, Pei Ying
Teguh, Dian Astari
Kenny, Jacob
Yang, Xiaohong
Chen, Honghui
Nakayama, Keiichi I.
Nakayama, Keiko
Pavlos, Nathan
Zheng, Ming H.
Xu, Jiake
author_facet Khor, Ee Cheng
Abel, Tamara
Tickner, Jennifer
Chim, Shek Man
Wang, Cathy
Cheng, Taksum
Ng, Benjamin
Ng, Pei Ying
Teguh, Dian Astari
Kenny, Jacob
Yang, Xiaohong
Chen, Honghui
Nakayama, Keiichi I.
Nakayama, Keiko
Pavlos, Nathan
Zheng, Ming H.
Xu, Jiake
author_sort Khor, Ee Cheng
collection PubMed
description Bone remodeling is intrinsically regulated by cell signaling molecules. The Protein Kinase C (PKC) family of serine/threonine kinases is involved in multiple signaling pathways including cell proliferation, differentiation, apoptosis and osteoclast biology. However, the precise involvement of individual PKC isoforms in the regulation of osteoclast formation and bone homeostasis remains unclear. Here, we identify PKC-δ as the major PKC isoform expressed among all PKCs in osteoclasts; including classical PKCs (−α, −β and −γ), novel PKCs (−δ, −ε, −η and −θ) and atypical PKCs (−ι/λ and −ζ). Interestingly, pharmacological inhibition and genetic ablation of PKC-δ impairs osteoclastic bone resorption in vitro. Moreover, disruption of PKC-δ activity protects against LPS-induced osteolysis in mice, with osteoclasts accumulating on the bone surface failing to resorb bone. Treatment with the PKC-δ inhibitor Rottlerin, blocks LPS-induced bone resorption in mice. Consistently, PKC-δ deficient mice exhibit increased trabeculae bone containing residual cartilage matrix, indicative of an osteoclast-rich osteopetrosis phenotype. Cultured ex vivo osteoclasts derived from PKC-δ null mice exhibit decreased CTX-1 levels and MARKS phosphorylation, with enhanced formation rates. This is accompanied by elevated gene expression levels of cathepsin K and PKC −α, −γ and −ε, as well as altered signaling of pERK and pcSrc416/527 upon RANKL-induction, possibly to compensate for the defects in bone resorption. Collectively, our data indicate that PKC-δ is an intrinsic regulator of osteoclast formation and bone resorption and thus is a potential therapeutic target for pathological osteolysis.
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spelling pubmed-37385882013-08-15 Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption Khor, Ee Cheng Abel, Tamara Tickner, Jennifer Chim, Shek Man Wang, Cathy Cheng, Taksum Ng, Benjamin Ng, Pei Ying Teguh, Dian Astari Kenny, Jacob Yang, Xiaohong Chen, Honghui Nakayama, Keiichi I. Nakayama, Keiko Pavlos, Nathan Zheng, Ming H. Xu, Jiake PLoS One Research Article Bone remodeling is intrinsically regulated by cell signaling molecules. The Protein Kinase C (PKC) family of serine/threonine kinases is involved in multiple signaling pathways including cell proliferation, differentiation, apoptosis and osteoclast biology. However, the precise involvement of individual PKC isoforms in the regulation of osteoclast formation and bone homeostasis remains unclear. Here, we identify PKC-δ as the major PKC isoform expressed among all PKCs in osteoclasts; including classical PKCs (−α, −β and −γ), novel PKCs (−δ, −ε, −η and −θ) and atypical PKCs (−ι/λ and −ζ). Interestingly, pharmacological inhibition and genetic ablation of PKC-δ impairs osteoclastic bone resorption in vitro. Moreover, disruption of PKC-δ activity protects against LPS-induced osteolysis in mice, with osteoclasts accumulating on the bone surface failing to resorb bone. Treatment with the PKC-δ inhibitor Rottlerin, blocks LPS-induced bone resorption in mice. Consistently, PKC-δ deficient mice exhibit increased trabeculae bone containing residual cartilage matrix, indicative of an osteoclast-rich osteopetrosis phenotype. Cultured ex vivo osteoclasts derived from PKC-δ null mice exhibit decreased CTX-1 levels and MARKS phosphorylation, with enhanced formation rates. This is accompanied by elevated gene expression levels of cathepsin K and PKC −α, −γ and −ε, as well as altered signaling of pERK and pcSrc416/527 upon RANKL-induction, possibly to compensate for the defects in bone resorption. Collectively, our data indicate that PKC-δ is an intrinsic regulator of osteoclast formation and bone resorption and thus is a potential therapeutic target for pathological osteolysis. Public Library of Science 2013-08-08 /pmc/articles/PMC3738588/ /pubmed/23951014 http://dx.doi.org/10.1371/journal.pone.0070815 Text en © 2013 Khor et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Khor, Ee Cheng
Abel, Tamara
Tickner, Jennifer
Chim, Shek Man
Wang, Cathy
Cheng, Taksum
Ng, Benjamin
Ng, Pei Ying
Teguh, Dian Astari
Kenny, Jacob
Yang, Xiaohong
Chen, Honghui
Nakayama, Keiichi I.
Nakayama, Keiko
Pavlos, Nathan
Zheng, Ming H.
Xu, Jiake
Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title_full Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title_fullStr Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title_full_unstemmed Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title_short Loss of Protein Kinase C-δ Protects against LPS-Induced Osteolysis Owing to an Intrinsic Defect in Osteoclastic Bone Resorption
title_sort loss of protein kinase c-δ protects against lps-induced osteolysis owing to an intrinsic defect in osteoclastic bone resorption
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3738588/
https://www.ncbi.nlm.nih.gov/pubmed/23951014
http://dx.doi.org/10.1371/journal.pone.0070815
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