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  Fkbp10 deletion in osteoblasts leads to qualitative defects in bone

Lietman, C. D., Lim, J., Grafe, I., Chen, Y., Ding, H., Bi, X., et al. (2017). Fkbp10 deletion in osteoblasts leads to qualitative defects in bone. Journal of Bone and Mineral Research, 32(6), 1354-1367. doi:10.1002/jbmr.3108.

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Lietman, Caressa D., Autor
Lim, Joohyun, Autor
Grafe, Ingo, Autor
Chen, Yuqing, Autor
Ding, Hao, Autor
Bi, Xiaohong, Autor
Ambrose, Catherine G., Autor
Fratzl-Zelman, Nadja, Autor
Roschger, Paul, Autor
Klaushofer, Klaus, Autor
Wagermaier, Wolfgang1, Autor           
Schmidt, Ingo1, Autor           
Fratzl, Peter2, Autor           
Rai, Jyoti, Autor
Weis, MaryAnn, Autor
Eyre, David, Autor
Keene, Douglas R., Autor
Krakow, Deborah, Autor
Lee, Brendan H., Autor
Affiliations:
1Wolfgang Wagermaier, Biomaterialien, Max Planck Institute of Colloids and Interfaces, Max Planck Society, ou_1863296              
2Peter Fratzl, Biomaterialien, Max Planck Institute of Colloids and Interfaces, Max Planck Society, ou_1863294              

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Schlagwörter: osteogenesis imperfecta, matrix mineralization, collagen, osteoblasts, genetic animal models
 Zusammenfassung: Osteogenesis Imperfecta (OI), also known as brittle bone disease, displays a spectrum of clinical severity from mild (OI type I) to severe early lethality (OI type II), with clinical features including low bone mass, fractures and deformities. Mutations in the FK506 Binding Protein 10 (FKBP10), gene encoding the 65KDa protein FKBP65, cause a recessive form of OI and Bruck syndrome, the latter being characterized by joint contractures in addition to low bone mass. We previously showed that Fkbp10 expression is limited to bone, tendon and ligaments in postnatal tissues. Furthermore, in both patients and Fkbp10 knockout mice, collagen telopeptide hydroxylysine crosslinking is dramatically reduced. To further characterize the bone specific contributions of Fkbp10, we conditionally ablated FKBP65 in Fkbp10fl/fl mice (Mus musculus; C57BL/6) using the osteoblast specific Col1a1 2.3kb Cre recombinase. Using µCT, histomorphometry and quantitative backscattered electron imaging, we found minimal alterations in the quantity of bone and no differences in the degree of bone matrix mineralization in this model. However, mass spectroscopy of bone collagen demonstrated a decrease in mature, hydroxylysine-aldehyde crosslinking. Furthermore, bone of mutant mice exhibits a reduction in mineral-to-matrix ratio and in crystal size as shown by Raman spectroscopy and small angle x-ray scattering, respectively. Importantly, abnormalities in bone quality were associated with impaired bone biomechanical strength in mutant femurs compared with those of wild type littermates. Taken together, these data suggest that the altered collagen crosslinking through Fkbp10 ablation in osteoblasts primarily leads to a qualitative defect in the skeleton. This article is protected by copyright.

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 Datum: 2017
 Publikationsstatus: Erschienen
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 Identifikatoren: DOI: 10.1002/jbmr.3108
PMID: 0522
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Titel: Journal of Bone and Mineral Research
Genre der Quelle: Zeitschrift
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Ort, Verlag, Ausgabe: Hoboken, New Jersey : Wiley-Blackwell
Seiten: - Band / Heft: 32 (6) Artikelnummer: - Start- / Endseite: 1354 - 1367 Identifikator: ISSN: 0884-0431