Crystal Structure of a Phycourobilin-Containing Phycoerythrin at 1.90-Å Resolution

dc.contributor.authorRitter, Stephandeu
dc.contributor.authorHiller, Roger G.deu
dc.contributor.authorWrench, Pamela M.deu
dc.contributor.authorWelte, Wolfram
dc.contributor.authorDiederichs, Kay
dc.date.accessioned2011-03-24T17:29:44Zdeu
dc.date.available2011-03-24T17:29:44Zdeu
dc.date.issued1999deu
dc.description.abstractThe structure of R-phycoerythrin (R-PE) from the red alga Griffithsia monilis was solved at 1.90-Å resolution by molecular replacement, using the atomic coordinates of cyanobacterial phycocyanin from Fremyella diplosiphon as a model. The crystallographic R factor for the final model is 17.5% (Rfree 22.7%) for reflections in the range 100 1.90 Å. The model consists of an (αβ)2 dimer with an internal noncrystallographic dyad and a fragment of the γ-polypeptide. The α-polypeptide (164 amino acid residues) has two covalently bound phycoerythrobilins at positions α82 and α139. The β-polypeptide (177 residues) has two phycoerythrobilins bound to residues β82 and β158 and one phycourobilin covalently attached to rings A and D at residues β50 and β61, respectively. The electron density of the g-polypeptide is mostly averaged out by threefold crystallographic symmetry, but a dipeptide (Gly-Tyr) and one single Tyr could be modeled. These two tyrosine residues of the γ-polypeptide are in close proximity to the phycoerythrobilins at position β82 of two symmetry-related β-polypeptides and are related by the same noncrystallographic dyad as the (αβ)2 dimer. Possible energy transfer pathways are discussed briefly.eng
dc.description.versionpublished
dc.format.mimetypeapplication/pdfdeu
dc.identifier.citationFirst publ. in: Journal of Structural Biology 126 (1999), pp. 86-97deu
dc.identifier.doi10.1006/jsbi.1999.4106
dc.identifier.pmid10388620
dc.identifier.ppn27397582Xdeu
dc.identifier.urihttp://kops.uni-konstanz.de/handle/123456789/6862
dc.language.isoengdeu
dc.legacy.dateIssued2007deu
dc.rightsAttribution-NonCommercial-NoDerivs 2.0 Generic
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.0/
dc.subjectlight-harvesting complexesdeu
dc.subjectred algaedeu
dc.subjectphycobiliproteinsdeu
dc.subjectprotein structuredeu
dc.subjectmolecular replacementdeu
dc.subject.ddc570deu
dc.titleCrystal Structure of a Phycourobilin-Containing Phycoerythrin at 1.90-Å Resolutioneng
dc.typeJOURNAL_ARTICLEdeu
dspace.entity.typePublication
kops.citation.bibtex
@article{Ritter1999Cryst-6862,
  year={1999},
  doi={10.1006/jsbi.1999.4106},
  title={Crystal Structure of a Phycourobilin-Containing Phycoerythrin at 1.90-Å Resolution},
  number={2},
  volume={126},
  issn={1047-8477},
  journal={Journal of Structural Biology},
  pages={86--97},
  author={Ritter, Stephan and Hiller, Roger G. and Wrench, Pamela M. and Welte, Wolfram and Diederichs, Kay}
}
kops.citation.iso690RITTER, Stephan, Roger G. HILLER, Pamela M. WRENCH, Wolfram WELTE, Kay DIEDERICHS, 1999. Crystal Structure of a Phycourobilin-Containing Phycoerythrin at 1.90-Å Resolution. In: Journal of Structural Biology. 1999, 126(2), pp. 86-97. ISSN 1047-8477. Available under: doi: 10.1006/jsbi.1999.4106deu
kops.citation.iso690RITTER, Stephan, Roger G. HILLER, Pamela M. WRENCH, Wolfram WELTE, Kay DIEDERICHS, 1999. Crystal Structure of a Phycourobilin-Containing Phycoerythrin at 1.90-Å Resolution. In: Journal of Structural Biology. 1999, 126(2), pp. 86-97. ISSN 1047-8477. Available under: doi: 10.1006/jsbi.1999.4106eng
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    <dcterms:abstract xml:lang="eng">The structure of R-phycoerythrin (R-PE) from the red alga Griffithsia monilis was solved at 1.90-Å resolution by molecular replacement, using the atomic coordinates of cyanobacterial phycocyanin from Fremyella diplosiphon as a model. The crystallographic R factor for the final model is 17.5% (Rfree 22.7%) for reflections in the range 100 1.90 Å. The model consists of an (αβ)2 dimer with an internal noncrystallographic dyad and a fragment of the γ-polypeptide. The α-polypeptide (164 amino acid residues) has two covalently bound phycoerythrobilins at positions α82 and α139. The β-polypeptide (177 residues) has two phycoerythrobilins bound to residues β82 and β158 and one phycourobilin covalently attached to rings A and D at residues β50 and β61, respectively. The electron density of the g-polypeptide is mostly averaged out by threefold crystallographic symmetry, but a dipeptide (Gly-Tyr) and one single Tyr could be modeled. These two tyrosine residues of the γ-polypeptide are in close proximity to the phycoerythrobilins at position β82 of two symmetry-related β-polypeptides and are related by the same noncrystallographic dyad as the (αβ)2 dimer. Possible energy transfer pathways are discussed briefly.</dcterms:abstract>
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