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Published on: November 8, 2006
VapA/Scs2 sustains polarized growth in Aspergillus nidulans by maintaining AP-2-mediated apical endocytosis
Xenia Georgiou1, Sofia Politi1, Sotiris Amillis1
1Department of Biology, National and Kapodistrian University of Athens, Panepistimioupolis, 15784 Athens, Greece.
Abstract:
Growth of filamentous fungi is highly polarized requiring the coordinated apical delivery of cell wall components and plasma membrane (PM) material, primarily lipids and proteins, to hyphal tips via conventional vesicular secretion. Fungal growth also requires the tight coordination of exocytosis (secretion) with endocytosis and recycling of proteins and lipids, which occurs in a defined region behind the growing tip known as the endocytic collar. Here, we genetically characterized proteins tentatively implicated in the formation of endoplasmic reticulum-plasma membrane (ER-PM) contact sites, including Scs2/VAP, tricalbins and Ist2 homologues, in Aspergillus nidulans. We showed that among these proteins, only the single Scs2/VapA homologue is essential for normal fungal growth, and this requirement is due to the critical role of VapA in maintaining the polarized localization of apical cargoes, such as the lipid flippases DnfA and DnfB or the SNARE protein SynA. In vapA mutants, these cargoes lose their polarized localization, a phenotype that correlates with the mislocalization of the AP-2 cargo adaptor complex, which is essential for the endocytosis and recycling of apical membrane components. Further analysis provides evidence linking the defect in apical cargo endocytosis observed in vapA mutants to altered membrane lipid partitioning, suggesting that VapA contributes to lipid domain organization critical for cargo recycling. Strikingly, deletion of VapA does not impair the localization or endocytosis of non-polarized (subapical) plasma membrane transporters, indicating that the trafficking and biogenesis of polarized (apical) versus non-polarized (subapical) cargoes are differentially dependent on membrane lipid composition and domain-specific organization.
Insights
VapA protein is essential for polarized fungal growth by maintaining the localization of apical cargoes. Its absence disrupts endocytosis and lipid organization, impacting hyphal tip growth in Aspergillus nidulans.
Area of Science:
- Cell Biology
- Mycology
- Molecular Biology
Background:
- Fungal growth requires polarized secretion and endocytosis at hyphal tips.
- Endoplasmic reticulum-plasma membrane (ER-PM) contact sites are implicated in membrane trafficking.
- Proteins like Scs2/VAP, tricalbins, and Ist2 homologues are involved in ER-PM contacts.
Purpose of the Study:
- To genetically characterize ER-PM contact proteins in Aspergillus nidulans.
- To determine the role of Scs2/VapA in polarized fungal growth and membrane trafficking.
Main Methods:
- Genetic characterization of ER-PM proteins in Aspergillus nidulans.
- Analysis of protein localization (VapA, DnfA, DnfB, SynA, AP-2 complex) in wild-type and mutant strains.
- Investigation of membrane lipid partitioning and cargo endocytosis.
Main Results:
- Only Scs2/VapA homologue is essential for normal fungal growth.
- VapA is critical for polarized localization of apical cargoes (DnfA, DnfB, SynA).
- ΔvapA mutants show mislocalization of AP-2 complex, impaired apical cargo endocytosis, and altered membrane lipid partitioning.
- VapA deletion does not affect non-polarized (subapical) membrane transporters.
Conclusions:
- VapA plays a crucial role in maintaining polarized apical growth by regulating cargo localization and endocytosis.
- VapA is involved in organizing membrane lipid domains essential for cargo recycling.
- Differential dependence of polarized versus non-polarized cargo trafficking on membrane lipid composition is highlighted.
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