Deletion analysis of the che operon in the archaeon Halobacterium salinarium.

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Published in J Mol Biol on May 17, 1996

Authors

J Rudolph1, D Oesterhelt

Author Affiliations

1: Max Planck Institute for Biochemistry, Martinsried, Germany.

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Lysine 216 is a binding site of the retinyl moiety in bacteriorhodopsin. FEBS Lett (1981) 1.20

Nucleotide sequence and functional properties of a sodium-dependent citrate transport system from Klebsiella pneumoniae. J Biol Chem (1992) 1.20

Role of PufX protein in photosynthetic growth of Rhodobacter sphaeroides. 1. PufX is required for efficient light-driven electron transfer and photophosphorylation under anaerobic conditions. Biochemistry (1995) 1.19

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Thermoacidophilic archaebacteria contain bacterial-type ferredoxins acting as electron acceptors of 2-oxoacid:ferredoxin oxidoreductases. Eur J Biochem (1982) 1.18

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Homologous bacterio-opsin-encoding gene expression via site-specific vector integration. Gene (1993) 1.14

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DNA sequence of a citrate carrier of Klebsiella pneumoniae. Eur J Biochem (1990) 1.13

The fdx gene encoding the [2Fe--2S] ferredoxin of Halobacterium salinarium (H. halobium). Mol Gen Genet (1993) 1.13

Characterization of Halobacterium halobium mutants defective in taxis. J Bacteriol (1990) 1.13

Crystallization of a multienzyme complex: fatty acid synthetase from yeast. Proc Natl Acad Sci U S A (1969) 1.12

Chromophore motion during the bacteriorhodopsin photocycle: polarized absorption spectroscopy of bacteriorhodopsin and its M-state in bacteriorhodopsin crystals. EMBO J (1991) 1.12

Electrochemical proton gradient across the cell membrane of Halobacterium halobium: comparison of the light-induced increase with the increase of intracellular adenosine triphosphate under steady-state illumination. Biochemistry (1980) 1.11

Amino acid sequence of the cytochrome subunit of the photosynthetic reaction centre from the purple bacterium Rhodopseudomonas viridis. EMBO J (1987) 1.10

Effects of anion binding on the deprotonation reactions of halorhodopsin. J Biol Chem (1986) 1.10