Matrix Metalloproteinases are required for membrane motility and lumenogenesis during Drosophila heart development
Qanber S Raza1, Jessica L Vanderploeg2, J Roger Jacobs3
1Department of Cell Biology, School of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania, United States of America.
Abstract:
Matrix Metalloproteinases (Mmps) degrade glycoproteins and proteoglycans of the extracellular matrix (ECM) or cell surface and are crucial for morphogenesis. Mmps and their inhibitors are expressed during early stages of cardiac development in vertebrates and expression is altered in multiple congenital cardiomyopathies such as cardia bifida. Drosophila genome encodes two copies of Mmps, Mmp1 and Mmp2 whereas in humans up to 25 Mmps have been identified with overlapping functions. We investigated the role of Mmps during embryonic heart development in Drosophila, a process which is morphogenetically similar to early heart tube formation in vertebrates. We demonstrate that the two Mmps in Drosophila have distinct and overlapping roles in cell motility, cell adhesion and cardiac lumenogenesis. We determined that Mmp1 and Mmp2 promote Leading Edge membrane dynamics of cardioblasts during collective migration. Mmp2 is essential for cardiac lumen formation, and mutants generate a cardia bifida phenotype. Mmp1 is required for luminal expansion. Mmp1 and Mmp2 both localise to the basal domains of cardiac cells, however, occupy non-overlapping domains apically. Mmp1 and Mmp2 regulate the proteoglycan composition and size of the apical and basal ECM, yet only Mmp2 is required to restrict ECM assembly to the lumen. Mmp1 negatively regulates the size of the adhesive Cadherin cell surface domain, whereas in a complementary fashion, Mmp2 negatively regulates the size of the Integrin-ECM domain and thereby prescribes the domain to establish and restrict Slit morphogen signalling. Inhibition of Mmp activity through ectopic expression of Tissue Inhibitor of Metalloproteinase in the ectoderm blocks lumen formation. Therefore, Mmp expression and function identifies ECM differentiation and remodelling as a key element for cell polarisation and organogenesis.
Insights
Matrix Metalloproteinases (MMPs) are crucial for embryonic heart development, regulating cell migration and organogenesis. Drosophila MMPs, Mmp1 and Mmp2, have distinct roles in cardiac lumen formation and extracellular matrix remodeling.
Area of Science:
- Developmental Biology
- Molecular Biology
- Cell Biology
Background:
- Matrix Metalloproteinases (MMPs) are enzymes that degrade extracellular matrix (ECM) components.
- MMPs play vital roles in morphogenesis and are implicated in congenital cardiomyopathies.
- Drosophila possesses two MMPs (Mmp1, Mmp2), offering a model to study their functions in cardiac development.
Purpose of the Study:
- To investigate the distinct and overlapping roles of Mmp1 and Mmp2 in Drosophila embryonic heart development.
- To elucidate the mechanisms by which MMPs regulate cell motility, adhesion, and cardiac lumenogenesis.
- To understand the contribution of MMPs to ECM remodeling and cell polarization during organogenesis.
Main Methods:
- Utilized Drosophila as a model organism for studying embryonic heart development.
- Analyzed Mmp1 and Mmp2 function in vivo using genetic mutants and ectopic expression.
- Investigated MMP localization, ECM composition, and cell surface domain regulation using microscopy and biochemical approaches.
Main Results:
- Mmp1 and Mmp2 promote cardioblast migration and regulate cell adhesion.
- Mmp2 is essential for cardiac lumen formation, with mutants exhibiting cardia bifida; Mmp1 is required for luminal expansion.
- MMPs modulate apical and basal ECM composition and restrict ECM assembly to the lumen.
- Mmp1 and Mmp2 regulate Cadherin and Integrin-ECM domains, influencing Slit signaling.
Conclusions:
- Drosophila MMPs (Mmp1, Mmp2) have essential, distinct, and overlapping roles in embryonic heart development.
- MMP-mediated ECM remodeling is critical for cell polarization and cardiac organogenesis.
- Understanding MMP function in Drosophila provides insights into vertebrate heart development and congenital heart defects.
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