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Inappropriate cathepsin K secretion promotes its enzymatic activation driving heart and valve malformation
Po-Nien Lu, Trevor Moreland, Courtney J. Christian, Troy C. Lund, Richard A. Steet, Heather Flanagan-Steet
Po-Nien Lu, Trevor Moreland, Courtney J. Christian, Troy C. Lund, Richard A. Steet, Heather Flanagan-Steet
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Research Article Cell biology Development

Inappropriate cathepsin K secretion promotes its enzymatic activation driving heart and valve malformation

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Abstract

Although congenital heart defects (CHDs) represent the most common birth defect, a comprehensive understanding of disease etiology remains unknown. This is further complicated since CHDs can occur in isolation or as a feature of another disorder. Analyzing disorders with associated CHDs provides a powerful platform to identify primary pathogenic mechanisms driving disease. Aberrant localization and expression of cathepsin proteases can perpetuate later-stage heart diseases, but their contribution toward CHDs is unclear. To investigate the contribution of cathepsins during cardiovascular development and congenital disease, we analyzed the pathogenesis of cardiac defects in zebrafish models of the lysosomal storage disorder mucolipidosis II (MLII). MLII is caused by mutations in the GlcNAc-1-phosphotransferase enzyme (Gnptab) that disrupt carbohydrate-dependent sorting of lysosomal enzymes. Without Gnptab, lysosomal hydrolases, including cathepsin proteases, are inappropriately secreted. Analyses of heart development in gnptab-deficient zebrafish show cathepsin K secretion increases its activity, disrupts TGF-β–related signaling, and alters myocardial and valvular formation. Importantly, cathepsin K inhibition restored normal heart and valve development in MLII embryos. Collectively, these data identify mislocalized cathepsin K as an initiator of cardiac disease in this lysosomal disorder and establish cathepsin inhibition as a viable therapeutic strategy.

Authors

Po-Nien Lu, Trevor Moreland, Courtney J. Christian, Troy C. Lund, Richard A. Steet, Heather Flanagan-Steet

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Figure 3

Disruptions in BMP and TGF-β signaling are associated with MLII heart and valve defects.

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Disruptions in BMP and TGF-β signaling are associated with MLII heart an...
(A) Schematic illustrates role for TGF-β, BMP, and Notch signals during AV valve development comparing mammals and fish. PG, proteoglycan; VPC, valve precursor cell; EMT, endocardial to mesenchymal transition. (B and C) In situ analyses of aggrecan (acana, red arrowheads) (B) and osteopontin (spp1, yellow arrowheads) (C) in 4 dpf embryos show defects in expression of the cardiac jelly are associated with loss of mesenchymal migration in gnptab/MLII morphants and mutants. Percent values indicate the number of embryos with the pictured phenotype. n = 50–65 embryos from 3 experiments. Scale bar: 50 μm. (D) Confocal images of WT and gnptab morphants stained immunohistochemically for myosin (red) and either pSmad1/5/8 or pSmad2 (green) illustrate reduced BMP and increased TGF-β signaling in MLII hearts. Boxed areas highlight region particularly affected, which are magnified in panels to the right. V, ventricle; A, atrium; OFT, outflow tract. n = 25 embryos from 3 independent matings. Scale bar: 20 μm. (E) Graphs show the percentage of cells in the ventricle and atrium with nuclear localized pSmad2 and pSmad1/5/8 staining. Data are presented as mean ± SEM. ****P < 0.0001 using 2-tailed Student’s t test. (F) Live confocal images of 4 dpf embryos expressing the BRE:dsEGFP (reports BMP signaling, denoted by white arrowheads) and myl7:RFP (labels cardiomyocytes red) confirm reduced BMP signaling (labeled green by BRE:dsEGPP) in the ventricle of MLII hearts, which is restored when TGF-β signaling is inhibited with SB505124. n = 10–12 embryos from 3 independent experiments. (G) Confocal images of tie2:EGFP+ (green) WT, gnptab-deficient morphants, and TGF-β–inhibited gnptab-deficient morphants treated with SB505124. Embryos stained immunohistochemically for myosin (red). n = 25–30 embryos from 3 independent experiments. Scale bar: 30 μm. (H) Graphs show percent of embryos whose hearts loop normally and that exhibit edema. For simplicity, each dot represents the average value obtained from an experiment containing 25–30 embryos. Total n > 100 embryo per condition. Data represent mean ± SEM. ****P < 0.0001 using Dunnett’s test with correction.

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