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Published on: November 22, 2013
Inappropriate cathepsin K secretion promotes its enzymatic activation driving heart and valve malformation
Po-Nien Lu1, Trevor Moreland1, Courtney J Christian2
1Greenwood Genetic Center, J.C. Self Research Institute, Greenwood, South Carolina, USA.
Insights
Mislocalized cathepsin K in mucolipidosis II (MLII) causes congenital heart defects (CHDs) by disrupting signaling pathways. Inhibiting cathepsin K effectively restored normal heart and valve development in affected zebrafish embryos.
Area of Science:
- Developmental Biology
- Genetics
- Biochemistry
Background:
- Congenital heart defects (CHDs) are common birth defects with largely unknown causes.
- Lysosomal storage disorders, like mucolipidosis II (MLII), can be associated with CHDs.
- The role of cathepsin proteases in CHDs is not well understood.
Purpose of the Study:
- To investigate the role of cathepsins in cardiovascular development and CHDs.
- To explore the pathogenesis of cardiac defects in MLII using zebrafish models.
- To determine if cathepsin inhibition can be a therapeutic strategy for MLII-associated CHDs.
Main Methods:
- Utilized zebrafish models deficient in GlcNAc-1-phosphotransferase (Gnptab) to study MLII.
- Analyzed heart development and cathepsin protease activity in gnptab-deficient zebrafish.
- Assessed the impact of cathepsin K inhibition on cardiac and valvular formation.
Main Results:
- Gnptab deficiency led to increased secretion and activity of cathepsin K.
- Aberrant cathepsin K disrupted TGF-β signaling, affecting myocardial and valvular development.
- Inhibition of cathepsin K rescued normal heart and valve development in MLII zebrafish embryos.
Conclusions:
- Mislocalized cathepsin K initiates cardiac defects in MLII.
- Cathepsin K is a key mediator of cardiac pathology in this lysosomal storage disorder.
- Cathepsin inhibition presents a potential therapeutic approach for MLII-related CHDs.
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.
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