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1K0T

NMR SOLUTION STRUCTURE OF UNBOUND, OXIDIZED PHOTOSYSTEM I SUBUNIT PSAC, CONTAINING [4FE-4S] CLUSTERS FA AND FB

Summary for 1K0T
Entry DOI10.2210/pdb1k0t/pdb
DescriptorPSAC SUBUNIT OF PHOTOSYSTEM I, IRON/SULFUR CLUSTER (2 entities in total)
Functional Keywordsiron-sulfur protein, solution structure, paramagnetic, conformational change, electron transport, photosystem i, psac
Biological sourceSynechococcus sp.
Cellular locationCellular thylakoid membrane; Peripheral membrane protein; Cytoplasmic side (By similarity): P31087
Total number of polymer chains1
Total formula weight9395.32
Authors
Antonkine, M.L.,Liu, G.,Bentrop, D.,Bryant, D.A.,Bertini, I.,Luchinat, C.,Golbeck, J.H.,Stehlik, D. (deposition date: 2001-09-20, release date: 2002-06-05, Last modification date: 2024-05-01)
Primary citationAntonkine, M.L.,Liu, G.,Bentrop, D.,Bryant, D.A.,Bertini, I.,Luchinat, C.,Golbeck, J.H.,Stehlik, D.
Solution structure of the unbound, oxidized Photosystem I subunit PsaC, containing [4Fe-4S] clusters F(A) and F(B): a conformational change occurs upon binding to photosystem I.
J.Biol.Inorg.Chem., 7:461-472, 2002
Cited by
PubMed Abstract: This work presents the three-dimensional NMR solution structure of recombinant, oxidized, unbound PsaC from Synechococcus sp. PCC 7002. Constraints are derived from homo- and heteronuclear one-, two- and three-dimensional (1)H and (15)N NMR data. Significant differences are outlined between the unbound PsaC structure presented here and the available X-ray structure of bound PsaC as an integral part of the whole cyanobacterial PS I complex. These differences mainly concern the arrangement of the N- and C-termini with respect to the [4Fe-4S] core domain. In the NMR solution structure of PsaC the C-terminal region assumes a disordered helical conformation, and is clearly different from the extended coil conformation, which is one of the structural elements required to anchor PsaC to the PS I core heterodimer. In solution the N-terminus of PsaC is in contact with the pre-C-terminal region but slides in between the latter and the iron-sulfur core region of the protein. Together, these features result in a concerted movement of the N-terminus and pre-C-terminal region away from the F(A) binding site, accompanied by a bending of the N-terminus. In comparison, the same terminal regions are positioned much closer to F(A) and take up an anti-parallel beta-sheet arrangement in PsaC bound to PS I. The conformational changes between bound and unbound PsaC correlate with the differences reported earlier for the EPR spectra of reduced F(A) and F(B) in bound versus unbound PsaC. The observed different structural features in solution are highly relevant for unraveling the stepwise assembly process of the stromal PsaC, PsaD and PsaE subunits to the PS I core heterodimer. Electronic supplementary material to this paper can be obtained by using the Springer Link server located at http://dx.doi.org/10.1007/s00775-001-0321-3.
PubMed: 11941504
DOI: 10.1007/s00775-001-0321-3
PDB entries with the same primary citation
Experimental method
SOLUTION NMR
Structure validation

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