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Published on: July 14, 2016
Reduced prostasin (CAP1/PRSS8) activity eliminates HAI-1 and HAI-2 deficiency-associated developmental defects by
Roman Szabo1, Katiuchia Uzzun Sales, Peter Kosa
1Oral and Pharyngeal Cancer Branch, National Institute of Dental and Craniofacial Research, National Institutes of Health, Bethesda, Maryland, United States of America.
Abstract:
Loss of either hepatocyte growth factor activator inhibitor (HAI)-1 or -2 is associated with embryonic lethality in mice, which can be rescued by the simultaneous inactivation of the membrane-anchored serine protease, matriptase, thereby demonstrating that a matriptase-dependent proteolytic pathway is a critical developmental target for both protease inhibitors. Here, we performed a genetic epistasis analysis to identify additional components of this pathway by generating mice with combined deficiency in either HAI-1 or HAI-2, along with genes encoding developmentally co-expressed candidate matriptase targets, and screening for the rescue of embryonic development. Hypomorphic mutations in Prss8, encoding the GPI-anchored serine protease, prostasin (CAP1, PRSS8), restored placentation and normal development of HAI-1-deficient embryos and prevented early embryonic lethality, mid-gestation lethality due to placental labyrinth failure, and neural tube defects in HAI-2-deficient embryos. Inactivation of genes encoding c-Met, protease-activated receptor-2 (PAR-2), or the epithelial sodium channel (ENaC) alpha subunit all failed to rescue embryonic lethality, suggesting that deregulated matriptase-prostasin activity causes developmental failure independent of aberrant c-Met and PAR-2 signaling or impaired epithelial sodium transport. Furthermore, phenotypic analysis of PAR-1 and matriptase double-deficient embryos suggests that the protease may not be critical for focal proteolytic activation of PAR-2 during neural tube closure. Paradoxically, although matriptase auto-activates and is a well-established upstream epidermal activator of prostasin, biochemical analysis of matriptase- and prostasin-deficient placental tissues revealed a requirement of prostasin for conversion of the matriptase zymogen to active matriptase, whereas prostasin zymogen activation was matriptase-independent.
Insights
Loss of HAI-1 or HAI-2 causes embryonic lethality, rescued by inhibiting matriptase. Prostasin deficiency also causes lethality, revealing its critical role in development and matriptase activation.
Area of Science:
- Developmental Biology
- Protease Inhibitor Function
- Mammalian Genetics
Background:
- Hepatocyte growth factor activator inhibitors (HAI)-1 and -2 are crucial for embryonic development.
- Their loss leads to embryonic lethality, linked to a matriptase-dependent proteolytic pathway.
- Identifying other pathway components is essential for understanding developmental regulation.
Purpose of the Study:
- To identify additional components of the HAI-1/-2 and matriptase-dependent proteolytic pathway.
- To investigate the roles of candidate matriptase targets in embryonic development.
- To elucidate the functional relationship between matriptase and prostasin.
Main Methods:
- Genetic epistasis analysis in mice.
- Generation of combined deficiency mouse models (HAI-1/2 and candidate targets).
- Phenotypic screening for rescue of embryonic lethality and developmental defects.
Main Results:
- Hypomorphic mutations in Prss8 (prostasin) rescued HAI-1 and HAI-2 deficiency-induced embryonic lethality and defects.
- Inactivation of c-Met, PAR-2, or ENaC alpha subunit did not rescue lethality.
- Prostasin is required for matriptase zymogen activation, while prostasin activation is matriptase-independent.
Conclusions:
- Prostasin is a critical component of the HAI-1/-2-regulated developmental pathway.
- Matriptase-prostasin activity, not c-Met, PAR-2, or ENaC signaling, drives developmental failure.
- A novel regulatory loop exists where prostasin activates matriptase, essential for development.
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