4.7 Article

Differential expression of lumican and fibromodulin regulate collagen fibrillogenesis in developing mouse tendons

Journal

JOURNAL OF CELL BIOLOGY
Volume 151, Issue 4, Pages 779-787

Publisher

ROCKEFELLER UNIV PRESS
DOI: 10.1083/jcb.151.4.779

Keywords

collagen; proteoglycans; lumican; fibromodulin; tendon

Categories

Funding

  1. NEI NIH HHS [EY11654, R01 EY011654, R01 EY011654-08, R01 EY011654-07, R56 EY011654] Funding Source: Medline
  2. NIAMS NIH HHS [AR44745, R01 AR044745] Funding Source: Medline

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Collagen fibrillogenesis is finely regulated during development of tissue-specific extracellular matrices. The role(s) of a leucine-rich repeat protein sub-family in the regulation of fibrillogenesis during tendon development were defined. Lumican-, fibromodulin-, and double-deficient mice demonstrated disruptions in fibrillogenesis, With development, the amount of lumican decreases to barely detectable levels while fibromodulin increases significantly, and these changing patterns may regulate this process. Electron microscopic analysis demonstrated structural abnormalities in the fibrils and alterations in the progression through different assembly steps. In lumican-deficient tendons, alterations were observed early and the mature tendon was nearly normal. Fibromodulin-deficient tendons were comparable with the lumican-null in early developmental periods and acquired a severe phenotype by maturation. The double-deficient mice had a phenotype that was additive early and comparable with the fibromodulin-deficient mice at maturation. Therefore, lumican and fibromodulin both influence initial assembly of intermediates and the entry into fibril growth, while fibromodulin facilitates the progression through growth steps leading to mature fibrils. The observed increased ratio of fibromodulin to lumican and a competition for the same binding site could mediate these transitions. These studies indicate that lumican and fibromodulin have different developmental stage and leucine-rich repeat protein specific functions in the regulation of fibrillogenesis.

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