Literature DB >> 22738070

Aspartate-histidine interaction in the retinal schiff base counterion of the light-driven proton pump of Exiguobacterium sibiricum.

S P Balashov1, L E Petrovskaya, E P Lukashev, E S Imasheva, A K Dioumaev, J M Wang, S V Sychev, D A Dolgikh, A B Rubin, M P Kirpichnikov, J K Lanyi.   

Abstract

One of the distinctive features of eubacterial retinal-based proton pumps, proteorhodopsins, xanthorhodopsin, and others, is hydrogen bonding of the key aspartate residue, the counterion to the retinal Schiff base, to a histidine. We describe properties of the recently found eubacterium proton pump from Exiguobacterium sibiricum (named ESR) expressed in Escherichia coli, especially features that depend on Asp-His interaction, the protonation state of the key aspartate, Asp85, and its ability to accept a proton from the Schiff base during the photocycle. Proton pumping by liposomes and E. coli cells containing ESR occurs in a broad pH range above pH 4.5. Large light-induced pH changes indicate that ESR is a potent proton pump. Replacement of His57 with methionine or asparagine strongly affects the pH-dependent properties of ESR. In the H57M mutant, a dramatic decrease in the quantum yield of chromophore fluorescence emission and a 45 nm blue shift of the absorption maximum with an increase in the pH from 5 to 8 indicate deprotonation of the counterion with a pK(a) of 6.3, which is also the pK(a) at which the M intermediate is observed in the photocycle of the protein solubilized in detergent [dodecyl maltoside (DDM)]. This is in contrast with the case for the wild-type protein, for which the same experiments show that the major fraction of Asp85 is deprotonated at pH >3 and that it protonates only at low pH, with a pK(a) of 2.3. The M intermediate in the wild-type photocycle accumulates only at high pH, with an apparent pK(a) of 9, via deprotonation of a residue interacting with Asp85, presumably His57. In liposomes reconstituted with ESR, the pK(a) values for M formation and spectral shifts are 2-3 pH units lower than in DDM. The distinctively different pH dependencies of the protonation of Asp85 and the accumulation of the M intermediate in the wild-type protein versus the H57M mutant indicate that there is strong Asp-His interaction, which substantially lowers the pK(a) of Asp85 by stabilizing its deprotonated state.

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Year:  2012        PMID: 22738070      PMCID: PMC3415241          DOI: 10.1021/bi300409m

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  59 in total

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2.  Proton transfers in the photochemical reaction cycle of proteorhodopsin.

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Journal:  Biochemistry       Date:  2002-04-30       Impact factor: 3.162

3.  Bacteriorhodopsin: a light-driven proton pump in Halobacterium Halobium.

Authors:  R H Lozier; R A Bogomolni; W Stoeckenius
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4.  pH-dependent transitions in xanthorhodopsin.

Authors:  Eleonora S Imasheva; Sergei P Balashov; Jennifer M Wang; Janos K Lanyi
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5.  Evaluation of intrinsic chemical kinetics and transient product spectra from time-resolved spectroscopic data.

Authors:  A K Dioumaev
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Review 6.  The structural basis of the functioning of bacteriorhodopsin: an overview.

Authors:  Y A Ovchinnikov; N G Abdulaev; M Y Feigina; A V Kiselev; N A Lobanov
Journal:  FEBS Lett       Date:  1979-04-15       Impact factor: 4.124

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8.  Estimated acid dissociation constants of the Schiff base, Asp-85, and Arg-82 during the bacteriorhodopsin photocycle.

Authors:  L S Brown; L Bonet; R Needleman; J K Lanyi
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9.  His75-Asp97 cluster in green proteorhodopsin.

Authors:  Franziska Hempelmann; Soraya Hölper; Mirka-Kristin Verhoefen; Andreas C Woerner; Thomas Köhler; Sarah-Anna Fiedler; Nicole Pfleger; Josef Wachtveitl; Clemens Glaubitz
Journal:  J Am Chem Soc       Date:  2011-03-02       Impact factor: 15.419

10.  Weakened coupling of conserved arginine to the proteorhodopsin chromophore and its counterion implies structural differences from bacteriorhodopsin.

Authors:  Ranga Partha; Richard Krebs; Tamara L Caterino; Mark S Braiman
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  14 in total

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Authors:  R Scott McIsaac; Martin K M Engqvist; Timothy Wannier; Adam Z Rosenthal; Lukas Herwig; Nicholas C Flytzanis; Eleonora S Imasheva; Janos K Lanyi; Sergei P Balashov; Viviana Gradinaru; Frances H Arnold
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Review 2.  Microbial and animal rhodopsins: structures, functions, and molecular mechanisms.

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3.  Thermal and spectroscopic characterization of a proton pumping rhodopsin from an extreme thermophile.

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4.  Structural insights into the proton pumping by unusual proteorhodopsin from nonmarine bacteria.

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6.  Diversity, Mechanism, and Optogenetic Application of Light-Driven Ion Pump Rhodopsins.

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7.  X-ray Crystallographic Structure of Thermophilic Rhodopsin: IMPLICATIONS FOR HIGH THERMAL STABILITY AND OPTOGENETIC FUNCTION.

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Review 8.  Application of direct electrometry in studies of microbial rhodopsins reconstituted in proteoliposomes.

Authors:  Sergey A Siletsky; Mahir D Mamedov; Evgeniy P Lukashev; Sergei P Balashov; Lada E Petrovskaya
Journal:  Biophys Rev       Date:  2022-08-02

9.  Photocycle of Exiguobacterium sibiricum rhodopsin characterized by low-temperature trapping in the IR and time-resolved studies in the visible.

Authors:  Andrei K Dioumaev; Lada E Petrovskaya; Jennifer M Wang; Sergei P Balashov; Dmitriy A Dolgikh; Mikhail P Kirpichnikov; Janos K Lanyi
Journal:  J Phys Chem B       Date:  2013-06-10       Impact factor: 2.991

10.  Breaking the carboxyl rule: lysine 96 facilitates reprotonation of the Schiff base in the photocycle of a retinal protein from Exiguobacterium sibiricum.

Authors:  Sergei P Balashov; Lada E Petrovskaya; Eleonora S Imasheva; Evgeniy P Lukashev; Andrei K Dioumaev; Jennifer M Wang; Sergey V Sychev; Dmitriy A Dolgikh; Andrei B Rubin; Mikhail P Kirpichnikov; Janos K Lanyi
Journal:  J Biol Chem       Date:  2013-05-21       Impact factor: 5.157

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