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H G KHORANA

Showing results (21-30 of 232) with videos related to

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The Journal of Biological Chemistry|September 15, 1990
Orientation of retinal in bovine rhodopsin determined by cross-linking using a photoactivatable analog of 11-cis-retinalT A Nakayama, H G Khorana
The Journal of Biological Chemistry|October 15, 1990
Assembly of functional rhodopsin requires a disulfide bond between cysteine residues 110 and 187S S Karnik, H G Khorana
Biochemistry|September 19, 1989
Structural studies on transmembrane proteins. 1. Model study using bacteriorhodopsin mutants containing single cysteine residuesS L Flitsch, H G Khorana
The Journal of Biological Chemistry|August 25, 1989
Structure-function studies on bacteriorhodopsin. X. Individual substitutions of arginine residues by glutamine affect chromophore formation, photocycle, and proton translocationL J Stern, H G Khorana
Nucleic Acids Research|July 25, 1988
Total synthesis and expression of a gene for the alpha-subunit of bovine rod outer segment guanine nucleotide-binding protein (transducin)T P Sakmar, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|May 14, 1996
Structure and function in rhodopsin: correct folding and misfolding in point mutants at and in proximity to the site of the retinitis pigmentosa mutation Leu-125-->Arg in the transmembrane helix CP Garriga, X Liu, H G Khorana
The Journal of Biological Chemistry|August 25, 1989
Structure-function studies on bacteriorhodopsin. IX. Substitutions of tryptophan residues affect protein-retinal interactions in bacteriorhodopsinT Mogi, T Marti, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|April 26, 2001
Mapping of contact sites in complex formation between transducin and light-activated rhodopsin by covalent crosslinking: use of a photoactivatable reagentK Cai, Y Itoh, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|April 26, 2001
Mapping of contact sites in complex formation between light-activated rhodopsin and transducin by covalent crosslinking: use of a chemically preactivated reagentY Itoh, K Cai, H G Khorana
The Journal of Biological Chemistry|February 25, 1982
Reconstitution of bacteriorhodopsin vesicles with Halobacterium halobium lipids. Effects of variations in lipid compositionB Höjeberg, C Lind, H G Khorana
Pageof 24

Showing results (21-30 of 232) with videos related to

Sort By:
Pageof 24
The Journal of Biological Chemistry|September 15, 1990
Orientation of retinal in bovine rhodopsin determined by cross-linking using a photoactivatable analog of 11-cis-retinalT A Nakayama, H G Khorana
The Journal of Biological Chemistry|October 15, 1990
Assembly of functional rhodopsin requires a disulfide bond between cysteine residues 110 and 187S S Karnik, H G Khorana
Biochemistry|September 19, 1989
Structural studies on transmembrane proteins. 1. Model study using bacteriorhodopsin mutants containing single cysteine residuesS L Flitsch, H G Khorana
The Journal of Biological Chemistry|August 25, 1989
Structure-function studies on bacteriorhodopsin. X. Individual substitutions of arginine residues by glutamine affect chromophore formation, photocycle, and proton translocationL J Stern, H G Khorana
Nucleic Acids Research|July 25, 1988
Total synthesis and expression of a gene for the alpha-subunit of bovine rod outer segment guanine nucleotide-binding protein (transducin)T P Sakmar, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|May 14, 1996
Structure and function in rhodopsin: correct folding and misfolding in point mutants at and in proximity to the site of the retinitis pigmentosa mutation Leu-125-->Arg in the transmembrane helix CP Garriga, X Liu, H G Khorana
The Journal of Biological Chemistry|August 25, 1989
Structure-function studies on bacteriorhodopsin. IX. Substitutions of tryptophan residues affect protein-retinal interactions in bacteriorhodopsinT Mogi, T Marti, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|April 26, 2001
Mapping of contact sites in complex formation between transducin and light-activated rhodopsin by covalent crosslinking: use of a photoactivatable reagentK Cai, Y Itoh, H G Khorana
Proceedings of the National Academy of Sciences of the United States of America|April 26, 2001
Mapping of contact sites in complex formation between light-activated rhodopsin and transducin by covalent crosslinking: use of a chemically preactivated reagentY Itoh, K Cai, H G Khorana
The Journal of Biological Chemistry|February 25, 1982
Reconstitution of bacteriorhodopsin vesicles with Halobacterium halobium lipids. Effects of variations in lipid compositionB Höjeberg, C Lind, H G Khorana
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