Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 3 de 3
Filter
Add more filters










Database
Language
Publication year range
1.
Eur J Med Genet ; 63(9): 103980, 2020 Sep.
Article in English | MEDLINE | ID: mdl-32531462

ABSTRACT

To date 45 autosomal recessive disease-causing variants are reported in the FKBP10 gene. Those variant were found to be associated with Osteogenesis Imperfecta (OI) for which the hallmark phenotype is bone fractuers or Bruck Syndrome (BS) where bone fractures are accompanied with contractures. In addition, a specific homozygous FKBP10 mutation (p.Tyr293del) has been described in Yup'ik Inuit population to cause Kuskokwim syndrome (KS) in which contractures without fractures are observed. Here we present an extended Palestinian family with 10 affected individuals harboring a novel homozygous splice site mutation, c.391+4A > T in intron 2 of the FKBP10 gene, in which the three above mentioned syndromes segregate as a result of skipping of exon 2 and absence of the FKBP65 protein. At the biochemical level, Hydroxylysyl pyridinoline (HP)/lysyl pyridinoline (LP) values were inversely correlated with OI phenotypes, a trend we could confirm in our patients. Our findings illustrate that single familial FKBP10 mutations can result in a phenotypic spectrum, ranging from fractures without contractures, to fractures and contractures and even to only contractures. This broad intra-familial clinical variability within one single family is a new finding in the field of bone fragility.


Subject(s)
Arthrogryposis/genetics , Mutation , Osteogenesis Imperfecta/genetics , Phenotype , Tacrolimus Binding Proteins/genetics , Adolescent , Adult , Amino Acids/metabolism , Arthrogryposis/pathology , Cells, Cultured , Child , Female , Homozygote , Humans , Male , Osteogenesis Imperfecta/pathology , Pedigree , RNA Splice Sites
2.
Matrix Biol ; 90: 40-60, 2020 08.
Article in English | MEDLINE | ID: mdl-32173581

ABSTRACT

Prolyl 3-hydroxylation is a rare collagen type I post translational modification in fibrillar collagens. The primary 3Hyp substrate sites in type I collagen are targeted by an endoplasmic reticulum (ER) complex composed by cartilage associated protein (CRTAP), prolyl 3-hydroxylase 1 (P3H1) and prolyl cis/trans isomerase B, whose mutations cause recessive forms of osteogenesis imperfecta with impaired levels of α1(I)3Hyp986. The absence of collagen type I 3Hyp in wild type zebrafish provides the unique opportunity to clarify the role of the complex in vertebrate. Zebrafish knock outs for crtap and p3h1 were generated by CRISPR/Cas9. Mutant fish have the typical OI patients' reduced size, body disproportion and altered mineralization. Vertebral body fusions, deformities and fractures are accompanied to reduced size, thickness and bone volume. Intracellularly, collagen type I is overmodified, and partially retained causing enlarged ER cisternae. In the extracellular matrix the abnormal collagen type I assembles in disorganized fibers characterized by altered diameter. The data support the defective chaperone role of the 3-hydroxylation complex as the primary cause of the skeletal phenotype.


Subject(s)
Collagen Type II/metabolism , Collagen Type I/metabolism , Extracellular Matrix Proteins/genetics , Osteogenesis Imperfecta/genetics , Prolyl Hydroxylases/genetics , Animals , CRISPR-Cas Systems , Cyclophilins/genetics , Disease Models, Animal , Gene Knockout Techniques , Hydroxylation , Osteogenesis Imperfecta/metabolism , Phenotype , Prolyl Hydroxylases/chemistry , Zebrafish , Zebrafish Proteins/chemistry , Zebrafish Proteins/genetics
3.
Sci Rep ; 6: 21540, 2016 Feb 15.
Article in English | MEDLINE | ID: mdl-26876635

ABSTRACT

Over the last years the zebrafish imposed itself as a powerful model to study skeletal diseases, but a limit to its use is the poor characterization of collagen type I, the most abundant protein in bone and skin. In tetrapods collagen type I is a trimer mainly composed of two α1 chains and one α2 chain, encoded by COL1A1 and COL1A2 genes, respectively. In contrast, in zebrafish three type I collagen genes exist, col1a1a, col1a1b and col1a2 coding for α1(I), α3(I) and α2(I) chains. During embryonic and larval development the three collagen type I genes showed a similar spatio-temporal expression pattern, indicating their co-regulation and interdependence at these stages. In both embryonic and adult tissues, the presence of the three α(I) chains was demonstrated, although in embryos α1(I) was present in two distinct glycosylated states, suggesting a developmental-specific collagen composition. Even though in adult bone, skin and scales equal amounts of α1(I), α3(I) and α2(I) chains are present, the presented data suggest a tissue-specific stoichiometry and/or post-translational modification status for collagen type I. In conclusion, this data will be useful to properly interpret results and insights gained from zebrafish models of skeletal diseases.


Subject(s)
Bone Development/genetics , Collagen Type I/genetics , Collagen/genetics , Zebrafish Proteins/genetics , Zebrafish/genetics , Amino Acid Sequence , Animals , Collagen/biosynthesis , Collagen Type I/biosynthesis , Gene Expression Regulation, Developmental , Protein Processing, Post-Translational , Skin/growth & development , Skin/metabolism , Zebrafish/growth & development , Zebrafish Proteins/biosynthesis
SELECTION OF CITATIONS
SEARCH DETAIL
...