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Published on: December 18, 2019
Cathepsin K knockout mice develop osteopetrosis due to a deficit in matrix degradation but not demineralization
1Department of Bone and Cartilage Biology, SmithKline Beecham Pharmaceuticals, King of Prussia, Pennsylvania, USA.
Abstract:
Cathepsin K is a cysteine protease expressed predominantly in osteoclasts. Activated cathepsin K cleaves key bone matrix proteins and is believed to play an important role in degrading the organic phase of bone during bone resorption. Mutations in the human cathepsin K gene have been demonstrated to be associated with a rare skeletal dysplasia, pycnodysostosis. The degree of functional activity of the mutated forms of cathepsin K in these individuals has not been elucidated, but is predicted to be low or absent. To study the role of cathepsin K in bone resorption, we have generated mice deficient in the cathepsin K gene. Histologic and radiographic analysis of the mice revealed osteopetrosis of the long bones and vertebrae, and abnormal joint morphology. X-ray microcomputerized tomography images allowed quantitation of the increase in bone volume, trabecular thickness, and trabecular number in both the primary spongiosa and the metaphysis of the proximal tibiae. Not all bones were similarly affected. Chondrocyte differentiation was normal. The mice also had abnormalities in hematopoietic compartments, particularly decreased bone marrow cellularity and splenomegaly. The heterozygous animals appeared normal. Close histologic examination of bone histology revealed fully differentiated osteoclasts apposed to small regions of demineralized bone. This strongly suggests that cathepsin K-deficient osteoclasts are capable of demineralizing the extracellular matrix but are unable to adequately remove the demineralized bone. This is entirely consistent with the proposed function of cathepsin K as a matrix-degrading proteinase in bone resorption.
Insights
Cathepsin K deficiency in mice leads to osteopetrosis and impaired bone resorption. These findings highlight cathepsin K
Area of Science:
- Biochemistry
- Skeletal Biology
- Genetics
Background:
- Cathepsin K is a cysteine protease primarily in osteoclasts, crucial for bone matrix degradation during resorption.
- Mutations in the human cathepsin K gene are linked to pycnodysostosis, a rare skeletal disorder.
- The precise functional impact of mutated cathepsin K in pycnodysostosis remains unclear.
Purpose of the Study:
- To investigate the role of cathepsin K in bone resorption by creating and analyzing cathepsin K-deficient mice.
- To elucidate the functional consequences of cathepsin K absence on skeletal and hematopoietic systems.
Main Methods:
- Generation of mice lacking the cathepsin K gene.
- Histologic and radiographic analysis of bone structure and morphology.
- X-ray microcomputerized tomography for quantitative bone analysis.
- Examination of hematopoietic compartments and bone marrow cellularity.
Main Results:
- Cathepsin K-deficient mice exhibited osteopetrosis in long bones and vertebrae, with abnormal joint morphology.
- Quantitative analysis revealed increased bone volume, thickness, and number in proximal tibiae.
- Osteoclasts in deficient mice could demineralize bone but failed to resorb demineralized matrix.
- Abnormalities in hematopoietic compartments included decreased bone marrow cellularity and splenomegaly.
Conclusions:
- Cathepsin K is essential for the complete resorption of demineralized bone matrix by osteoclasts.
- The study confirms the critical role of cathepsin K as a matrix-degrading proteinase in bone resorption.
- Cathepsin K deficiency results in a phenotype consistent with osteopetrosis and impaired bone remodeling.
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