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Prolyl 3-Hydroxylase 1 Null Mice Display Abnormalities in Fibrillar Collagen-rich Tissues Such as Tendons,Skin, and Bones
Authors:Janice A Vranka  Elena Pokidysheva  Lauren Hayashi  Keith Zientek  Kazunori Mizuno  Yoshihiro Ishikawa  Kerry Maddox  Sara Tufa  Douglas R Keene  Robert Klein  Hans Peter B?chinger
Institution:From the Research Department, Shriners Hospitals for Children, Portland, Oregon 97239.;the §Department of Biochemistry and Molecular Biology, Oregon Health & Science University, Portland, Oregon 97239, and ;the Bone and Mineral Unit, Oregon Health & Science University, Portland, Oregon 97239
Abstract:Osteogenesis imperfecta (OI) is a skeletal disorder primarily caused by mutations in the type I collagen genes. However, recent investigations have revealed that mutations in the genes encoding for cartilage-associated protein (CRTAP) or prolyl 3-hydroxylase 1 (P3H1) can cause a severe, recessive form of OI. These reports show minimal 3-hydroxylation of key proline residues in type I collagen as a result of CRTAP or P3H1 deficiency and demonstrate the importance of P3H1 and CRTAP to bone structure and development. P3H1 and CRTAP have previously been shown to form a stable complex with cyclophilin B, and P3H1 was shown to catalyze the 3-hydroxylation of specific proline residues in procollagen I in vitro. Here we describe a mouse model in which the P3H1 gene has been inactivated. Our data demonstrate abnormalities in collagen fibril ultrastructure in tendons from P3H1 null mice by electron microscopy. Differences are also seen in skin architecture, as well as in developing limbs by histology. Additionally bone mass and strength were significantly lower in the P3H1 mice as compared with wild-type littermates. Altogether these investigations demonstrate disturbances of collagen fiber architecture in tissues rich in fibrillar collagen, including bone, tendon, and skin. This model system presents a good opportunity to study the underlying mechanisms of recessive OI and to better understand its effects in humans.
Keywords:Collagen  Extracellular Matrix  Mouse  Post Translational Modification  Protein Synthesis  Osteogenesis Imperfect  Prolyl 3-Hydroxylase 1
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