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Nature|August 29, 2003
Low-light-adapted Prochlorococcus species possess specific antennae for each photosystemT S Bibby, I Mary, J Nield, et al.Nature|October 12, 2001
Oxyphotobacteria. Antenna ring around photosystem IT S Bibby, J Nield, F Partensky, et al.Nature|August 17, 2001
Iron deficiency induces the formation of an antenna ring around trimeric photosystem I in cyanobacteriaT S Bibby, J Nield, J BarberThe Journal of Biological Chemistry|August 24, 2001
Three-dimensional model and characterization of the iron stress-induced CP43'-photosystem I supercomplex isolated from the cyanobacterium Synechocystis PCC 6803T S Bibby, J Nield, J BarberPhilosophical Transactions of the Royal Society of London. Series B, Biological Sciences|November 20, 2002
Organization of transmembrane helices in photosystem II: comparison of plants and cyanobacteriaJ Barber, J NieldPhilosophical Transactions of the Royal Society of London. Series B, Biological Sciences|December 29, 2000
Supermolecular structure of photosystem II and location of the PsbS proteinJ Nield, C Funk, J BarberEuropean Journal of Biochemistry|April 2, 1998
Localization of the 23-kDa subunit of the oxygen-evolving complex of photosystem II by electron microscopyE J Boekema, J Nield, B Hankamer, et al.FEBS Letters|September 5, 2001
Subunit positioning and transmembrane helix organisation in the core dimer of photosystem IIB Hankamer, E Morris, J Nield, et al.Journal of Structural Biology|November 28, 2001
Three-dimensional structure of the photosystem II core dimer of higher plants determined by electron microscopyB Hankamer, E Morris, J Nield, et al.European Journal of Biochemistry|January 15, 1997
Isolation and biochemical characterisation of monomeric and dimeric photosystem II complexes from spinach and their relevance to the organisation of photosystem II in vivoB Hankamer, J Nield, D Zheleva, et al.Pageof 95