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Origins and evolution of the HET-s prion-forming protein: searching for other amyloid-forming solenoids
- Source :
- PLoS ONE, PLoS ONE, Vol 6, Iss 11, p e27342 (2011)
- Publication Year :
- 2011
-
Abstract
- The HET-s prion-forming domain from the filamentous fungus Podospora anserina is gaining considerable interest since it yielded the first well-defined atomic structure of a functional amyloid fibril. This structure has been identified as a left-handed beta solenoid with a triangular hydrophobic core. To delineate the origins of the HET-s prion-forming protein and to discover other amyloid-forming proteins, we searched for all homologs of the HET-s protein in a database of protein domains and fungal genomes, using a combined application of HMM, psi-blast and pGenThreader techniques, and performed a comparative evolutionary analysis of the N-terminal alpha-helical domain and the C-terminal prion-forming domain of HET-s. By assessing the tandem evolution of both domains, we observed that the prion-forming domain is restricted to Sordariomycetes, with a marginal additional sequence homolog in Arthroderma otae as a likely case of horizontal transfer. This suggests innovation and rapid evolution of the solenoid fold in the Sordariomycetes clade. In contrast, the N-terminal domain evolves at a slower rate (in Sordariomycetes) and spans many diverse clades of fungi. We performed a full three-dimensional protein threading analysis on all identified HET-s homologs against the HET-s solenoid fold, and present detailed structural annotations for identified structural homologs to the prion-forming domain. An analysis of the physicochemical characteristics in our set of structural models indicates that the HET-s solenoid shape can be readily adopted in these homologs, but that they are all less optimized for fibril formation than the P. anserina HET-s sequence itself, due chiefly to the presence of fewer asparagine ladders and salt bridges. Our combined structural and evolutionary analysis suggests that the HET-s shape has “limited scope” for amyloidosis across the wider protein universe, compared to the ‘generic’ left-handed beta helix. We discuss the implications of our findings on future identification of amyloid-forming proteins sharing the solenoid fold.
- Subjects :
- Amyloid
Protein Structure
animal structures
Gene Transfer, Horizontal
Proteome
Prions
Protein domain
Beta helix
lcsh:Medicine
Sequence alignment
Computational biology
Biochemistry
Podospora anserina
Prion Diseases
Evolution, Molecular
Fungal Proteins
03 medical and health sciences
Protein structure
Phylogenetics
Podospora
Evolutionary Modeling
Macromolecular Structure Analysis
lcsh:Science
Biology
Phylogeny
030304 developmental biology
Genetics
0303 health sciences
Fungal protein
Evolutionary Biology
Multidisciplinary
biology
030302 biochemistry & molecular biology
lcsh:R
Proteins
Computational Biology
Sordariomycetes
biology.organism_classification
Protein Structure, Tertiary
Infectious Diseases
Medicine
lcsh:Q
Research Article
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 6
- Issue :
- 11
- Database :
- OpenAIRE
- Journal :
- PloS one
- Accession number :
- edsair.doi.dedup.....429932ee5158f2a6565955ecb557bd55