Key result
Cathepsin K disruption cuts plaque area ~42% in mice but increases fibrosis and foam cells.
Why the study?
Cathepsin K was highly upregulated in advanced stable atherosclerotic plaques, but its functional role in atherosclerosis progression was unclear.
Does disruption of the Cathepsin K gene reduce atherosclerosis progression in apoE(-/-) mice?
Does disruption of the Cathepsin K gene reduce atherosclerosis progression in apoE(-/-) mice?
Effect estimate: 41.8% reduction
Cathepsin K deficiency reduces atherosclerotic plaque progression and promotes plaque fibrosis, but paradoxically accelerates macrophage foam cell formation.
CatK knockout attenuates plaque area in apoE-/- mice; leaves open whether inhibition limits human atherosclerosis.
BACKGROUND: Cathepsin K (catK), a lysosomal cysteine protease, was identified in a gene-profiling experiment that compared human early plaques, advanced stable plaques, and advanced atherosclerotic plaques containing a thrombus, where it was highly upregulated in advanced stable plaques. METHODS AND RESULTS: To assess the function of catK in atherosclerosis, catK(-/-)/apolipoprotein (apo) E(-/-) mice were generated. At 26 weeks of age, plaque area in the catK(-/-)/apoE(-/-) mice was reduced (41.8%) owing to a decrease in the number of advanced lesions as well as a decrease in individual advanced plaque area. This suggests an important role for catK in atherosclerosis progression. Advanced plaques of catK(-/-)/apoE(-/-) mice showed an increase in collagen content. Medial elastin fibers were less prone to rupture than those of apoE(-/-) mice. Although the relative macrophage content did not differ, individual macrophage size increased. In vitro studies of bone marrow derived-macrophages confirmed this observation. Scavenger receptor-mediated uptake (particularly by CD36) of modified LDL increased in the absence of catK, resulting in an increased macrophage size because of increased cellular storage of cholesterol esters, thereby enlarging the lysosomes. CONCLUSIONS: A deficiency of catK reduces plaque progression and induces plaque fibrosis but aggravates macrophage foam cell formation in atherosclerosis.
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Lutgens et al. (2005) studied Atherosclerosis. Cathepsin K (catK) gene disruption vs. apoE(-/-) mice was evaluated on Plaque area (41.8% reduction). Disruption of the Cathepsin K gene in apoE(-/-) mice reduced atherosclerotic plaque area by 41.8% at 26 weeks of age, while increasing plaque fibrosis and macrophage foam cell formation.
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