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Modular organization of the Sulfolobus solfataricus mini-chromosome maintenance protein
- Source :
- The Journal of biological chemistry, 282 (2007): 12574–12582. doi:10.1074/jbc.M610953200, info:cnr-pdr/source/autori:Pucci B.; De Felice M.; Rocco M.; Esposito F.; De Falco M.; Esposito L.; Rossi M.; Pisani F.M./titolo:Modular organization of the Sulfolobus solfataricus mini-chromosome maintenance protein/doi:10.1074%2Fjbc.M610953200/rivista:The Journal of biological chemistry (Print)/anno:2007/pagina_da:12574/pagina_a:12582/intervallo_pagine:12574–12582/volume:282
- Publication Year :
- 2007
- Publisher :
- American Society for Biochemistry and Molecular Biology:9650 Rockville Pike:Bethesda, MD 20814:(301)530-7145, EMAIL: asbmb@asbmb.faseb.org, INTERNET: http://www.faseb.org/asbmb, Fax: (301)571-1824, 2007.
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Abstract
- Mini-chromosome maintenance (MCM) proteins form ring-like hexameric complexes that are commonly believed to act as the replicative DNA helicase at the eukaryotic/archaeal DNA replication fork. Because of their simplified composition with respect to the eukaryotic counterparts, the archaeal MCM complexes represent a good model system to use in analyzing the structural/functional relationships of these important replication factors. In this study the domain organization of the MCM-like protein from Sulfolobus solfataricus (Sso MCM) has been dissected by trypsin partial proteolysis. Three truncated derivatives of Sso MCM corresponding to protease-resistant domains were produced as soluble recombinant proteins and purified: the N-terminal domain (N-ter, residues 1-268); a fragment comprising the AAA+ and C-terminal domains (AAA+-C-ter, residues 269-686); and the C-terminal domain (C-ter, residues 504-686). All of the purified recombinant proteins behaved as monomers in solution as determined by analytical gel filtration chromatography, suggesting that the polypeptide chain integrity is required for stable oligomerization of Sso MCM. However, the AAA+-C-ter derivative, which includes the AAA+ motor domain and retains ATPase activity, was able to form dimers in solution when ATP was present, as analyzed by size exclusion chromatography and glycerol gradient sedimentation analyses. Interestingly, the AAA+-C-ter protein could displace oligonucleotides annealed to M13 single-stranded DNA although with a reduced efficiency in comparison with the full-sized Sso MCM. The implications of these findings for understanding the DNA helicase mechanism of the MCM complex are discussed.
- Subjects :
- Archaeal Proteins
ved/biology.organism_classification_rank.species
Biochemistry
Models, Biological
chemistry.chemical_compound
Structure-Activity Relationship
Protein structure
Minichromosome maintenance
MCM complex
Amino Acid Sequence
Molecular Biology
Sequence Deletion
Adenosine Triphosphatases
biology
ved/biology
Oligonucleotide
Sulfolobus solfataricus
DNA Helicases
Helicase
Cell Biology
DNA Replication Fork
Recombinant Proteins
Protein Structure, Tertiary
DNA-Binding Proteins
chemistry
biology.protein
DNA
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- The Journal of biological chemistry, 282 (2007): 12574–12582. doi:10.1074/jbc.M610953200, info:cnr-pdr/source/autori:Pucci B.; De Felice M.; Rocco M.; Esposito F.; De Falco M.; Esposito L.; Rossi M.; Pisani F.M./titolo:Modular organization of the Sulfolobus solfataricus mini-chromosome maintenance protein/doi:10.1074%2Fjbc.M610953200/rivista:The Journal of biological chemistry (Print)/anno:2007/pagina_da:12574/pagina_a:12582/intervallo_pagine:12574–12582/volume:282
- Accession number :
- edsair.doi.dedup.....63f66f82e11e366f26b310048371c911