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Rhodospirillum

Cytochrome from Rhodospirillum rubrum. ( 2itJ 5S 0.967). Purified by chromatography on a column of CM-Whatman cellulose [Paleus and Tuppy Acta Chem Scand 13 641 7959]. [Pg.526]

Finzel, B.C., et al. Stmcture of ferricytochrome c from Rhodospirillum molischianiim at 1.67 A resolution. [Pg.46]

Schneider, G., Lindqvist, Y., Lundqvlst, T. Crystallographic refinement and structure of ribulose-1,5-bisphosphate carboxylase from Rhodospirillum rubrum at 1.7 A resolution. J. Mol. Biol. [Pg.65]

Koepke, J., et al. The crystal structure of the light-harvesting complex II (B800-850) from Rhodospirillum molis-chianum. Structure 4 581-597, 1996. [Pg.249]

FIg. 10.1. Stock culture Rhodospirillum rubrum on slant agar (a hydrogen producer photosynthetic bacterium). [Pg.254]

Tim Steinbuchel (1990) studied the mechanisms of Alcaligenes spp. and Rhodospirillum rubrum for PHB synthesis by using butyric acid. Later, Steinbuchel (1991) confirmed the results for the potential of PHAs production and the compositions of PHAs. Under various microbial strains used, different contents of PHAs were obtained. [Pg.52]

An Fe-only nitrogenase has also been isolated from a nifH mutant of Rhodospirillum rubrum and was characterized as an a2/82<% hex-amer containing only iron, no molybdenum or vanadium, with an o 2Fe4S4-containing Fe protein. A factor could be extracted from the FeFe protein into NMF that combined with apo-MoFe protein to form an active enzyme 193). [Pg.209]

Sequence Comparison Between the N-Terminal Part of the Fepr Genes from Desulfovibrio desulfuricans (Dd) and Desulfovibrio vulgaris (Dv), Carbon Monoxide Dehydrogenase from Methanothrix soehngenii (Ms), Methanosarcina frisia Gdl (Mf), Clostridium thermoaceticum (Ct), Rhodospirillum rubrum (Rr), and Anaerobic Ribonucleotide Reductase from Escherichia coli (Ec) ... [Pg.228]

McGrath JE, CG Harfoot (1997) Reductive dehalogenation of halocarboxylic acids by the phototrophic genera Rhodospirillum and Rhodopseudomonas. Appl Environ Microbiol 63 333-335. [Pg.85]

Kessi J, KW Hanselmann (2004) Similarities between the abiotic reduction of selenite with glutathione and the dissimilatory reaction mediated by Rhodospirillum rubrum and Escherichia coli. J Biol Chem 279 50662-50669. [Pg.178]

Drennan CL, J Heo, MD Sintchak, E Schreiter, PW Ludden (2001) Life on carbon monoxide x-ray structure of Rhodospirillum rubrum Ni-Fe-S carbon monoxide dehydrogenase. Proc Natl Acad Sci USA 98 11973-11978. [Pg.189]

Ke B, Green M, Vernon LP, and Garcia AF. 1968. Some optical properties of a carotenoid complex derived from Rhodospirillum Rubrum. Biochimica et Biophysica Acta 162(3) 467 469. [Pg.56]

Polymers containing 3-hydroxy-4-pentenoate, 3HB, and 3HV were synthesized by Rhodospirillum rubrum and a strain of Burkholderia [40,41]. The repeating units found in this PHA included 3HB, 3HV, and 3-hydroxypentenoate (3HP), and the amount of 3HP units was as high as 19%, but no other poly(HASCL)s containing functional group have been reported to date. [Pg.59]

Rhodospirillum rubrum Ha - Rhodospirillum rubrum ATCC 25903 —Acinetobacter sp. RA3849 —Aeromonas caviae FA440 —Rhodobacter sphaeroides... [Pg.90]

Fig. 1. Photophobic action spectrum (open circles, solid line) and in vivo absorption spectrum (solid line) of Rhodospirillum rubrum. Abscissa wavelength in nm Ordinates relative sensitivity and absorbance respectively (after Clayton15), from Haupt57)), modified... Fig. 1. Photophobic action spectrum (open circles, solid line) and in vivo absorption spectrum (solid line) of Rhodospirillum rubrum. Abscissa wavelength in nm Ordinates relative sensitivity and absorbance respectively (after Clayton15), from Haupt57)), modified...
Fig. 2. Effect of DNP on photokinesis (closed circles) and photophobic response (open circles) of Rhodospirillum rubrum. Abscissa DNP concentration in mol Ordinate response in % of the uninhibited control (after1331)... Fig. 2. Effect of DNP on photokinesis (closed circles) and photophobic response (open circles) of Rhodospirillum rubrum. Abscissa DNP concentration in mol Ordinate response in % of the uninhibited control (after1331)...
M. Kern, W. Klipp, J. H. Klemme (1994) Increased nitrogenase-dependent H2 photoproduction by hup mutants of Rhodospirillum rubrum, Appl. Environmental Microbo., 60 1768-1774... [Pg.54]

Rhodospirillum rubrum SI Chemostat with glutamate limitation, D=0.013 h l, lactate, light saturation 20 0.26 65 Zurrer, Bachofen, 1979... [Pg.61]

A. Planchard, L. Mignot, T. Jouenne, G.-A. Junter (1984) Photoproduction of molecular hydrogen by Rhodospirillum rubrum immobilized in composite agar layer/microorous membrane structures. Appl. Microbiol. Biotechnol., 31 49-54... [Pg.69]

P. Von Felten, H. Zurrer, R. Bachofen (1985) Production of molecular hydrogen with immobilized cells of Rhodospirillum rub rum. Appl. Microbiol. Biotechnol., 23 15-20... [Pg.71]

H. Zurrer, R. Bachofen (1982) Aspects of growth and hydrogen production of the photosynthetic bacterium Rhodospirillum rubrum in continuous culture. Biomass, 2 165-174... [Pg.71]


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Reversibility Rhodospirillum rubrum

Rhodospirillum centenum

Rhodospirillum molischianum

Rhodospirillum molischianum, cytochromes

Rhodospirillum rubrum

Rhodospirillum rubrum ATCC

Rhodospirillum rubrum cytochrome

Rhodospirillum rubrum differences

Rhodospirillum rubrum heme protein

Rhodospirillum rubrum hydrogenase

Rhodospirillum rubrum mutant

Rhodospirillum rubrum photosynthesis

Rhodospirillum rubrum preparation

Rhodospirillum rubrum properties

Rhodospirillum rubrum structure

Rhodospirillum rubrum succinate dehydrogenase

Rhodospirillum rubrum transhydrogenase

Rhodospirillum rubrum, cell

Rhodospirillum ruhrum

Rhodospirillum salexigens

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