Type I and type V procollagen triple helix uses different subsets of the molecular ensemble for lysine posttranslational modifications in the rER
Type I and type V procollagen triple helix uses different subsets of the molecular ensemble for lysine posttranslational modifications in the rER
Collagen is the most abundant protein in humans. It has a characteristic triple-helix structure and is heavily posttranslationally modified. The complex biosynthesis of collagen involves processing by many enzymes and chaperones in the rough endoplasmic reticulum. Lysyl hydroxylase 1 (LH1) is required to hydroxylate lysine for cross-linking and carbohydrate attachment within collagen triple helical sequences. Additionally, a recent study of prolyl 3-hydroxylase 3 (P3H3) demonstrated that this enzyme may be critical for LH1 activity; however, the details surrounding its involvement remain unclear. If P3H3 is an LH1 chaperone that is critical for LH1 activity, P3H3 and LH1 null mice should display a similar deficiency in lysyl hydroxylation. To test this hypothesis, we compared the amount and location of hydroxylysine in the triple helical domains of type V and I collagen from P3H3 null, LH1 null, and wild-type mice. The amount of hydroxylysine in type V collagen was reduced in P3H3 null mice, but surprisingly type V collagen from LH1 null mice contained as much hydroxylysine as type V collagen from wild-type mice. In type I collagen, our results indicate that LH1 plays a global enzymatic role in lysyl hydroxylation. P3H3 is also involved in lysyl hydroxylation, particularly at cross-link formation sites, but is not required for all lysyl hydroxylation sites. In summary, our study suggests that LH1 and P3H3 likely have two distinct mechanisms to recognize different collagen types and to distinguish cross-link formation sites from other sites in type I collagen.
- University of California System United States
- Oulu University Hospital Finland
- UNIVERSITY OF CALIFORNIA, SAN FRANCISCO
- University of California San Francisco United States
- University of Oulu Finland
collagen, Male, Biomedical and clinical sciences, Inbred C57BL (mesh), Protein Conformation, Procollagen-Lysine, Procollagen-Proline Dioxygenase (mesh), lysyl hydroxylase, Inbred C57BL, Endoplasmic Reticulum, 11 Medical and Health Sciences (for), Medical and Health Sciences, Hydroxylysine, Mice, 34 Chemical sciences (for-2020), Hydroxylysine (mesh), 31 Biological sciences (for-2020), Animals (mesh), Male (mesh), Lysine (mesh), Post-Translational (mesh), Mice, Knockout, Procollagen-Lysine, 2-Oxoglutarate 5-Dioxygenase, 03 Chemical Sciences (for), Mice (mesh), Biological Sciences, molecular chaperone, Collagen Type V (mesh), Knockout (mesh), 06 Biological Sciences (for), endoplasmic reticulum, prolyl hydroxylase, posttranslational modifications, Collagen, Endoplasmic Reticulum, Rough, Research Article, Collagen Type I (mesh), 2-Oxoglutarate 5-Dioxygenase, Biochemistry & Molecular Biology, 570, Knockout, Procollagen-Proline Dioxygenase, 610, Rough (mesh), Biochemistry & Molecular Biology (science-metrix), Hydroxylation, Collagen Type I, Rough, Animals, Collagen (mesh), Protein Processing, 2-Oxoglutarate 5-Dioxygenase (mesh), 31 Biological Sciences (for-2020), Protein Conformation (mesh), Lysine, Post-Translational, 3101 Biochemistry and Cell Biology (for-2020), Mice, Inbred C57BL, 32 Biomedical and clinical sciences (for-2020), Chemical Sciences, Hydroxylation (mesh), Biochemistry and Cell Biology, Collagen Type V, Protein Processing, Post-Translational
collagen, Male, Biomedical and clinical sciences, Inbred C57BL (mesh), Protein Conformation, Procollagen-Lysine, Procollagen-Proline Dioxygenase (mesh), lysyl hydroxylase, Inbred C57BL, Endoplasmic Reticulum, 11 Medical and Health Sciences (for), Medical and Health Sciences, Hydroxylysine, Mice, 34 Chemical sciences (for-2020), Hydroxylysine (mesh), 31 Biological sciences (for-2020), Animals (mesh), Male (mesh), Lysine (mesh), Post-Translational (mesh), Mice, Knockout, Procollagen-Lysine, 2-Oxoglutarate 5-Dioxygenase, 03 Chemical Sciences (for), Mice (mesh), Biological Sciences, molecular chaperone, Collagen Type V (mesh), Knockout (mesh), 06 Biological Sciences (for), endoplasmic reticulum, prolyl hydroxylase, posttranslational modifications, Collagen, Endoplasmic Reticulum, Rough, Research Article, Collagen Type I (mesh), 2-Oxoglutarate 5-Dioxygenase, Biochemistry & Molecular Biology, 570, Knockout, Procollagen-Proline Dioxygenase, 610, Rough (mesh), Biochemistry & Molecular Biology (science-metrix), Hydroxylation, Collagen Type I, Rough, Animals, Collagen (mesh), Protein Processing, 2-Oxoglutarate 5-Dioxygenase (mesh), 31 Biological Sciences (for-2020), Protein Conformation (mesh), Lysine, Post-Translational, 3101 Biochemistry and Cell Biology (for-2020), Mice, Inbred C57BL, 32 Biomedical and clinical sciences (for-2020), Chemical Sciences, Hydroxylation (mesh), Biochemistry and Cell Biology, Collagen Type V, Protein Processing, Post-Translational
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