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Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta

Cyclophilin B (CyPB), encoded by PPIB, is an ER-resident peptidyl-prolyl cis-trans isomerase (PPIase) that functions independently and as a component of the collagen prolyl 3-hydroxylation complex. CyPB is proposed to be the major PPIase catalyzing the rate-limiting step in collagen folding. Mutatio...

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Autores principales: Cabral, Wayne A., Perdivara, Irina, Weis, MaryAnn, Terajima, Masahiko, Blissett, Angela R., Chang, Weizhong, Perosky, Joseph E., Makareeva, Elena N., Mertz, Edward L., Leikin, Sergey, Tomer, Kenneth B., Kozloff, Kenneth M., Eyre, David R., Yamauchi, Mitsuo, Marini, Joan C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4072593/
https://www.ncbi.nlm.nih.gov/pubmed/24968150
http://dx.doi.org/10.1371/journal.pgen.1004465
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author Cabral, Wayne A.
Perdivara, Irina
Weis, MaryAnn
Terajima, Masahiko
Blissett, Angela R.
Chang, Weizhong
Perosky, Joseph E.
Makareeva, Elena N.
Mertz, Edward L.
Leikin, Sergey
Tomer, Kenneth B.
Kozloff, Kenneth M.
Eyre, David R.
Yamauchi, Mitsuo
Marini, Joan C.
author_facet Cabral, Wayne A.
Perdivara, Irina
Weis, MaryAnn
Terajima, Masahiko
Blissett, Angela R.
Chang, Weizhong
Perosky, Joseph E.
Makareeva, Elena N.
Mertz, Edward L.
Leikin, Sergey
Tomer, Kenneth B.
Kozloff, Kenneth M.
Eyre, David R.
Yamauchi, Mitsuo
Marini, Joan C.
author_sort Cabral, Wayne A.
collection PubMed
description Cyclophilin B (CyPB), encoded by PPIB, is an ER-resident peptidyl-prolyl cis-trans isomerase (PPIase) that functions independently and as a component of the collagen prolyl 3-hydroxylation complex. CyPB is proposed to be the major PPIase catalyzing the rate-limiting step in collagen folding. Mutations in PPIB cause recessively inherited osteogenesis imperfecta type IX, a moderately severe to lethal bone dysplasia. To investigate the role of CyPB in collagen folding and post-translational modifications, we generated Ppib(−/−) mice that recapitulate the OI phenotype. Knock-out (KO) mice are small, with reduced femoral areal bone mineral density (aBMD), bone volume per total volume (BV/TV) and mechanical properties, as well as increased femoral brittleness. Ppib transcripts are absent in skin, fibroblasts, femora and calvarial osteoblasts, and CyPB is absent from KO osteoblasts and fibroblasts on western blots. Only residual (2–11%) collagen prolyl 3-hydroxylation is detectable in KO cells and tissues. Collagen folds more slowly in the absence of CyPB, supporting its rate-limiting role in folding. However, treatment of KO cells with cyclosporine A causes further delay in folding, indicating the potential existence of another collagen PPIase. We confirmed and extended the reported role of CyPB in supporting collagen lysyl hydroxylase (LH1) activity. Ppib(−/−) fibroblast and osteoblast collagen has normal total lysyl hydroxylation, while increased collagen diglycosylation is observed. Liquid chromatography/mass spectrometry (LC/MS) analysis of bone and osteoblast type I collagen revealed site-specific alterations of helical lysine hydroxylation, in particular, significantly reduced hydroxylation of helical crosslinking residue K87. Consequently, underhydroxylated forms of di- and trivalent crosslinks are strikingly increased in KO bone, leading to increased total crosslinks and decreased helical hydroxylysine- to lysine-derived crosslink ratios. The altered crosslink pattern was associated with decreased collagen deposition into matrix in culture, altered fibril structure in tissue, and reduced bone strength. These studies demonstrate novel consequences of the indirect regulatory effect of CyPB on collagen hydroxylation, impacting collagen glycosylation, crosslinking and fibrillogenesis, which contribute to maintaining bone mechanical properties.
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spelling pubmed-40725932014-07-02 Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta Cabral, Wayne A. Perdivara, Irina Weis, MaryAnn Terajima, Masahiko Blissett, Angela R. Chang, Weizhong Perosky, Joseph E. Makareeva, Elena N. Mertz, Edward L. Leikin, Sergey Tomer, Kenneth B. Kozloff, Kenneth M. Eyre, David R. Yamauchi, Mitsuo Marini, Joan C. PLoS Genet Research Article Cyclophilin B (CyPB), encoded by PPIB, is an ER-resident peptidyl-prolyl cis-trans isomerase (PPIase) that functions independently and as a component of the collagen prolyl 3-hydroxylation complex. CyPB is proposed to be the major PPIase catalyzing the rate-limiting step in collagen folding. Mutations in PPIB cause recessively inherited osteogenesis imperfecta type IX, a moderately severe to lethal bone dysplasia. To investigate the role of CyPB in collagen folding and post-translational modifications, we generated Ppib(−/−) mice that recapitulate the OI phenotype. Knock-out (KO) mice are small, with reduced femoral areal bone mineral density (aBMD), bone volume per total volume (BV/TV) and mechanical properties, as well as increased femoral brittleness. Ppib transcripts are absent in skin, fibroblasts, femora and calvarial osteoblasts, and CyPB is absent from KO osteoblasts and fibroblasts on western blots. Only residual (2–11%) collagen prolyl 3-hydroxylation is detectable in KO cells and tissues. Collagen folds more slowly in the absence of CyPB, supporting its rate-limiting role in folding. However, treatment of KO cells with cyclosporine A causes further delay in folding, indicating the potential existence of another collagen PPIase. We confirmed and extended the reported role of CyPB in supporting collagen lysyl hydroxylase (LH1) activity. Ppib(−/−) fibroblast and osteoblast collagen has normal total lysyl hydroxylation, while increased collagen diglycosylation is observed. Liquid chromatography/mass spectrometry (LC/MS) analysis of bone and osteoblast type I collagen revealed site-specific alterations of helical lysine hydroxylation, in particular, significantly reduced hydroxylation of helical crosslinking residue K87. Consequently, underhydroxylated forms of di- and trivalent crosslinks are strikingly increased in KO bone, leading to increased total crosslinks and decreased helical hydroxylysine- to lysine-derived crosslink ratios. The altered crosslink pattern was associated with decreased collagen deposition into matrix in culture, altered fibril structure in tissue, and reduced bone strength. These studies demonstrate novel consequences of the indirect regulatory effect of CyPB on collagen hydroxylation, impacting collagen glycosylation, crosslinking and fibrillogenesis, which contribute to maintaining bone mechanical properties. Public Library of Science 2014-06-26 /pmc/articles/PMC4072593/ /pubmed/24968150 http://dx.doi.org/10.1371/journal.pgen.1004465 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Cabral, Wayne A.
Perdivara, Irina
Weis, MaryAnn
Terajima, Masahiko
Blissett, Angela R.
Chang, Weizhong
Perosky, Joseph E.
Makareeva, Elena N.
Mertz, Edward L.
Leikin, Sergey
Tomer, Kenneth B.
Kozloff, Kenneth M.
Eyre, David R.
Yamauchi, Mitsuo
Marini, Joan C.
Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title_full Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title_fullStr Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title_full_unstemmed Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title_short Abnormal Type I Collagen Post-translational Modification and Crosslinking in a Cyclophilin B KO Mouse Model of Recessive Osteogenesis Imperfecta
title_sort abnormal type i collagen post-translational modification and crosslinking in a cyclophilin b ko mouse model of recessive osteogenesis imperfecta
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4072593/
https://www.ncbi.nlm.nih.gov/pubmed/24968150
http://dx.doi.org/10.1371/journal.pgen.1004465
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