The two consecutive M substates in the photocycle of bacteriorhodopsin are affected specifically by the D85N and D96N residue replacements (original) (raw)

The Retinal Schiff Base-Counterion Complex of Bacteriorhodopsin: Changed Geometry during the Photocycle Is a Cause of Proton Transfer to Aspartate 85

Leonid Brown, Janos Lanyi

Biochemistry, 1994

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Determination of the Transiently Lowered pKa of the Retinal Schiff Base during the Photocycle of Bacteriorhodopsin

Janos Lanyi

Proceedings of the National Academy of Sciences of the United States of America, 1996

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A residue substitution near the beta-ionone ring of the retinal affects the M substates of bacteriorhodopsin

László Zimányi

Biophysical Journal, 1992

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Photoreaction of bacteriorhodopsin at high pH: origins of the slow decay component of M

tsutomu kouyama

Biochemistry, 1992

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The chromophore retinal in bacteriorhodopsin does not change its attachment site, lysine 216, during proton translocation and light-dark adaptation

Norbert A Dencher

Biophysics of Structure and Mechanism, 1983

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A large photolysis-induced pKa increase of the chromophore counterion in bacteriorhodopsin: implications for ion transport mechanisms of retinal proteins

Andrei K Dioumaev

Biophysical Journal, 1996

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Proton transfer from Asp-96 to the bacteriorhodopsin Schiff base is caused by a decrease of the pKa of Asp-96 which follows a protein backbone conformational change

Janos Lanyi

Biochemistry, 1993

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Steric Interaction between the 9-Methyl Group of the Retinal and Tryptophan 182 Controls 13- cis to all - trans Reisomerization and Proton Uptake in the Bacteriorhodopsin Photocycle †

Janos Lanyi

Biochemistry, 1996

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Protein Conformational Changes during the Bacteriorhodopsin Photocycle

Kenneth Rothschild

Journal of Biological Chemistry, 1995

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The back photoreaction of the M intermediate in the photocycle of bacteriorhodopsin: mechanism and evidence for two M species

Janos Lanyi

Photochemistry and Photobiology, 1992

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Coupling of the Reisomerization of the Retinal, Proton Uptake, and Reprotonation of Asp-96 in the N Photointermediate of Bacteriorhodopsin †

Andrei K Dioumaev, Leonid Brown, Janos Lanyi

Biochemistry, 2001

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Charge Movements in the 13-c/s Photocycles of the Bacteriorhodopsin Mutants R82K and R82Q*

Rosalie Crouch

Photochemistry and Photobiology, 1997

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Infrared evidence that the Schiff base of bacteriorhodopsin is protonated: bR570 and K intermediates

Hector G Marrero Hernandez

Proceedings of the National Academy of Sciences, 1982

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Coupling photoisomerization of retinal to directional transport in bacteriorhodopsin

Janos Lanyi

Journal of Molecular Biology, 2000

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Connectivity of the Retinal Schiff Base to Asp 85 and Asp 96 during the Bacteriorhodopsin Photocycle: The Local-Access Model

Leonid Brown

Biophysical Journal, 1998

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Photoreaction of the N intermediate of bacteriorhodopsin, and its relationship to the decay kinetics of the M intermediate

Janos Lanyi

Biochemistry, 1993

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Structural involvement of carboxyl residues in the photocycle of bacteriorhodopsin

Jeffrey Herz

FEBS Letters, 1981

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Structural Changes during the Formation of Early Intermediates in the Bacteriorhodopsin Photocycle

Emad Tajkhorshid

Biophysical Journal, 2002

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Protein structural change at the cytoplasmic surface as the cause of cooperativity in the bacteriorhodopsin photocycle

Janos Lanyi

Biophysical Journal, 1996

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Schiff Base Switch II Precedes the Retinal Thermal Isomerization in the Photocycle of Bacteriorhodopsin

Marc Facciotti

PLoS ONE, 2013

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Mechanism of Primary Proton Transfer in Bacteriorhodopsin

Marcus Elstner

Structure, 2004

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Cooperativity-regulated parallel pathways of the bacteriorhodopsin photocycle

Zsolt Tokaji

FEBS Letters, 1995

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Understanding Structure and Function in the Light-Driven Proton Pump Bacteriorhodopsin

Janos Lanyi

Journal of Structural Biology, 1998

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Proton transfer and energy coupling in the bacteriorhodopsin photocycle

Janos Lanyi

Journal of Bioenergetics and Biomembranes, 1992

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Functional significance of a protein conformation change at the cytoplasmic end of helix F during the bacteriorhodopsin photocycle

Leonid Brown

Biophysical Journal, 1995

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Photoreactions of bacteriorhodopsin at acid pH

Janos Lanyi

Biophysical Journal, 1989

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Excitation of the M Intermediates of Bacteriorhodopsin

László Fábián

Photochemistry and Photobiology, 2009

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Infrared study of the L, M, and N intermediates of bacteriorhodopsin using the photoreaction of M

P. Ormos

Biochemistry, 1992

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Proton translocation mechanism and energetics in the light-driven pump bacteriorhodopsin

Janos Lanyi

Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1993

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Crystallographic Structure of the Retinal and the Protein after Deprotonation of the Schiff Base: The Switch in the Bacteriorhodopsin Photocycle

Janos Lanyi

Journal of Molecular Biology, 2002

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Replacement of leucine-93 by alanine or threonine slows down the decay of the N and O intermediates in the photocycle of bacteriorhodopsin: implications for proton uptake and 13-cis-retinal----all-trans-retinal reisomerization

Kenneth Rothschild

Proceedings of the National Academy of Sciences, 1991

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