Structure and Function of Glycosylated Tandem Repeats from Candida albicans Als Adhesins
- 1 March 2010
- journal article
- Published by American Society for Microbiology in Eukaryotic Cell
- Vol. 9 (3) , 405-414
- https://doi.org/10.1128/ec.00235-09
Abstract
Tandem repeat (TR) regions are common in yeast adhesins, but their structures are unknown, and their activities are poorly understood. TR regions in Candida albicans Als proteins are conserved glycosylated 36-residue sequences with cell-cell aggregation activity (J. M. Rauceo, R. De Armond, H. Otoo, P. C. Kahn, S. A. Klotz, N. K. Gaur, and P. N. Lipke, Eukaryot. Cell 5:1664-1673, 2006). Ab initio modeling with either Rosetta or LINUS generated consistent structures of three-stranded antiparallel beta-sheet domains, whereas randomly shuffled sequences with the same composition generated various structures with consistently higher energies. O- and N-glycosylation patterns showed that each TR domain had exposed hydrophobic surfaces surrounded by glycosylation sites. These structures are consistent with domain dimensions and stability measurements by atomic force microscopy (D. Alsteen, V. Dupres, S. A. Klotz, N. K. Gaur, P. N. Lipke, and Y. F. Dufrene, ACS Nano 3:1677-1682, 2009) and with circular dichroism determination of secondary structure and thermal stability. Functional assays showed that the hydrophobic surfaces of TR domains supported binding to polystyrene surfaces and other TR domains, leading to nonsaturable homophilic binding. The domain structures are like "classic" subunit interaction surfaces and can explain previously observed patterns of promiscuous interactions between TR domains in any Als proteins or between TR domains and surfaces of other proteins. Together, the modeling techniques and the supporting data lead to an approach that relates structure and function in many kinds of repeat domains in fungal adhesins.Keywords
This publication has 58 references indexed in Scilit:
- Yeast Cell Adhesion Molecules Have Functional Amyloid-Forming SequencesEukaryotic Cell, 2010
- Unfolding Individual Als5p Adhesion Proteins on Live CellsACS Nano, 2009
- Evolution of pathogenicity and sexual reproduction in eight Candida genomesNature, 2009
- Complementary Adhesin Function in C. albicans Biofilm FormationCurrent Biology, 2008
- Discovering the secrets of theCandida albicansagglutinin-like sequence (ALS) gene family – a sticky pursuitMedical Mycology, 2008
- Structure-based Protocol for Identifying Mutations that Enhance Protein–Protein Binding AffinitiesJournal of Molecular Biology, 2007
- Analysis of ALS5 and ALS6 allelic variability in a geographically diverse collection of Candida albicans isolatesFungal Genetics and Biology, 2007
- Visualizing density maps with UCSF ChimeraJournal of Structural Biology, 2007
- Threonine-Rich Repeats Increase Fibronectin Binding in the Candidaalbicans Adhesin Als5pEukaryotic Cell, 2006
- VMD: Visual molecular dynamicsJournal of Molecular Graphics, 1996