The supramolecular organization of self-assembling chlorosomal bacteriochlorophyll c, d, or e mimics
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T. Balaban | A. Eichhöfer | H. Kalt | T. Jochum | C. M. Reddy | J. Szmytkowski | G. Buth | D. Moss
[1] J. Linnanto,et al. Investigation on chlorosomal antenna geometries: tube, lamella and spiral-type self-aggregates , 2008, Photosynthesis Research.
[2] J. Lindsey,et al. Synthesis and structural properties of porphyrin analogues of bacteriochlorophyll c , 2007 .
[3] G. Oostergetel,et al. Long‐range organization of bacteriochlorophyll in chlorosomes of Chlorobium tepidum investigated by cryo‐electron microscopy , 2007, FEBS letters.
[4] Donald A. Bryant,et al. Candidatus Chloracidobacterium thermophilum: An Aerobic Phototrophic Acidobacterium , 2007, Science.
[5] T. Balaban,et al. Photosensitization of TiO2 and SnO2 by Artificial Self-Assembling Mimics of the Natural Chlorosomal Bacteriochlorophylls , 2007 .
[6] R. Tuma,et al. X-ray scattering and electron cryomicroscopy study on the effect of carotenoid biosynthesis to the structure of Chlorobium tepidum chlorosomes. , 2007, Biophysical journal.
[7] T. Fujiwara,et al. Structure of the light-harvesting bacteriochlorophyll c assembly in chlorosomes from Chlorobium limicola determined by solid-state NMR , 2007, Proceedings of the National Academy of Sciences.
[8] Roman Tuma,et al. Internal structure of chlorosomes from brown-colored chlorobium species and the role of carotenoids in their assembly. , 2006, Biophysical journal.
[9] T. Fujiwara,et al. Assembly of a mixture of isomeric BChl c from Chlorobium limicola as determined by intermolecular 13C-13C dipolar correlations: coexistence of dimer-based and pseudo-monomer-based stackings. , 2006, Biochemistry.
[10] H. Freeman. Supramolecular Dye Chemistry. Topics in Current Chemistry, 258 , 2006 .
[11] M. Kuypers,et al. Physiology and Phylogeny of Green Sulfur Bacteria Forming a Monospecific Phototrophic Assemblage at a Depth of 100 Meters in the Black Sea , 2005, Applied and Environmental Microbiology.
[12] T. Balaban. Relevance of the Diastereotopic Ligation of Magnesium Atoms of Chlorophylls in the Major Light-harvesting Complex II (LHC II) of Green Plants , 2005, Photosynthesis Research.
[13] T. Balaban. Tailoring porphyrins and chlorins for self-assembly in biomimetic artificial antenna systems. , 2005, Accounts of chemical research.
[14] Jörg Overmann,et al. An obligately photosynthetic bacterial anaerobe from a deep-sea hydrothermal vent. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[15] T. Balaban,et al. Structural characterization of artificial self-assembling porphyrins that mimic the natural chlorosomal bacteriochlorophylls c, d, and e. , 2005, Chemistry.
[16] T. Balaban,et al. Green Self‐Assembling Porphyrins and Chlorins as Mimics of the Natural Bacteriochlorophylls c, d, and e , 2004 .
[17] R. Tuma,et al. Lamellar organization of pigments in chlorosomes, the light harvesting complexes of green photosynthetic bacteria. , 2004, Biophysical journal.
[18] T. Balaban,et al. Self-assembled chromophores for hybrid solar cells , 2004 .
[19] S. Kimura,et al. Self-aggregation of synthetic zinc 21-hydroxy-121/131-oxo-porphyrins , 2003 .
[20] T. Balaban,et al. Controlling chirality and optical properties of artificial antenna systems with self-assembling porphyrins. , 2003, Angewandte Chemie.
[21] T. Steiner. The hydrogen bond in the solid state. , 2002, Angewandte Chemie.
[22] K. Schaffner,et al. A refined model of the chlorosomal antennae of the green bacterium Chlorobium tepidum from proton chemical shift constraints obtained with high-field 2-D and 3-D MAS NMR dipolar correlation spectroscopy. , 2001, Biochemistry.
[23] T. Balaban,et al. Multidimensional CP-MAS 13C NMR of uniformly enriched chlorophyll , 1998 .
[24] S. Takaichi,et al. Discovery of Natural Photosynthesis using Zn-Containing Bacteriochlorophyll in an Aerobic Bacterium Acidiphilium rubrum , 1996 .
[25] T. Balaban,et al. CP-MAS 13C-NMR dipolar correlation spectroscopy of 13C-enriched chlorosomes and isolated bacteriochlorophyll c aggregates of Chlorobium tepidum: the self-organization of pigments is the main structural feature of chlorosomes. , 1995, Biochemistry.
[26] Robert Eugene Blankenship,et al. Ultrafast energy transfer in light-harvesting chlorosomes from the green sulfur bacterium Chlorobium tepidum. , 1995, Chemical physics.
[27] J. Lindsey,et al. A simple method for preparing magnesium porphyrins , 1995 .
[28] A. Holzwarth,et al. On the structure of bacteriochlorophyll molecular aggregates in the chlorosomes of green bacteria. A molecular modelling study , 1994, Photosynthesis Research.
[29] T. Nozawa,et al. Structures of chlorosomes and aggregated BChlc inChlorobium tepidum from solid state high resolution CP/MAS13C NMR , 1994, Photosynthesis Research.
[30] J. Olson,et al. Green Photosynthetic Bacteria , 1988, Springer US.
[31] L. Staehelin,et al. Supramolecular organization of chlorosomes (chlorobium vesicles) and of their membrane attachment sites in Chlorobium limicola. , 1980, Biochimica et biophysica acta.
[32] L. Staehelin,et al. Visualization of the supramolecular architecture of chlorosomes (chlorobium type vesicles) in freeze-fractured cells of Chloroflexus aurantiacus , 1978, Archives of Microbiology.
[33] G. Cohen-bazire,et al. THE FINE STRUCTURE OF GREEN BACTERIA , 1964, The Journal of cell biology.
[34] Robert Eugene Blankenship. Molecular mechanisms of photosynthesis , 2002 .
[35] T. Balaban,et al. Models for the Pigment Organization in the Chlorosomes of Photosynthetic Bacteria: Diastereoselective Control of in-vitro Bacteriochlorophyll cs Aggregation , 1995 .