Literature DB >> 15738416

Proton binding within a membrane protein by a protonated water cluster.

Florian Garczarek1, Leonid S Brown, Janos K Lanyi, Klaus Gerwert.   

Abstract

Proton transfer is crucial for many enzyme reactions. Here, we show that in addition to protonatable amino acid side chains, water networks could constitute proton-binding sites in proteins. A broad IR continuum absorbance change during the proton pumping photocycle of bacteriorhodopsin (bR) indicates most likely deprotonation of a protonated water cluster at the proton release site close to the surface. We investigate the influence of several mutations on the proton release network and the continuum change, to gain information about the location and extent of the protonated water network and to reveal the participating residues necessary for its stabilization. We identify a protonated water cluster consisting in total of one proton and about five water molecules surrounded by six side chains and three backbone groups (Tyr-57, Arg-82, Tyr-83, Glu-204, Glu-194, Ser-193, Pro-77, Tyr-79, and Thr-205). The observed perturbation of proton release by many single-residue mutations is now explained by the influence of numerous side chains on the protonated H bonded network. In situ hydrogen/deuterium exchange Fourier transform IR measurements of the bR ground state, show that the proton of the release group becomes localized on Glu-204 and Asp-204 in the ground state of the mutants E194D and E204D, respectively, even though it is delocalized in the ground state of wild-type bR. Thus, the release mechanism switches between the wild-type and mutated proteins from a delocalized to a localized proton-binding site.

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Year:  2005        PMID: 15738416      PMCID: PMC553315          DOI: 10.1073/pnas.0500421102

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  36 in total

Review 1.  Reconciling crystallography and mutagenesis: a synthetic approach to the creation of a comprehensive model for proton pumping by bacteriorhodopsin.

Authors:  L S Brown
Journal:  Biochim Biophys Acta       Date:  2000-08-30

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

Authors:  R H Lozier; R A Bogomolni; W Stoeckenius
Journal:  Biophys J       Date:  1975-09       Impact factor: 4.033

3.  Properties of Asp212----Asn bacteriorhodopsin suggest that Asp212 and Asp85 both participate in a counterion and proton acceptor complex near the Schiff base.

Authors:  R Needleman; M Chang; B Ni; G Váró; J Fornés; S H White; J K Lanyi
Journal:  J Biol Chem       Date:  1991-06-25       Impact factor: 5.157

4.  Bacteriorhodopsin's intramolecular proton-release pathway consists of a hydrogen-bonded network.

Authors:  R Rammelsberg; G Huhn; M Lübben; K Gerwert
Journal:  Biochemistry       Date:  1998-04-07       Impact factor: 3.162

5.  A model-independent approach to assigning bacteriorhodopsin's intramolecular reactions to photocycle intermediates.

Authors:  B Hessling; G Souvignier; K Gerwert
Journal:  Biophys J       Date:  1993-11       Impact factor: 4.033

6.  Resonance Raman spectra of bacteriorhodopsin's primary photoproduct: evidence for a distorted 13-cis retinal chromophore.

Authors:  M Braiman; R Mathies
Journal:  Proc Natl Acad Sci U S A       Date:  1982-01       Impact factor: 11.205

7.  pK(a) Calculations suggest storage of an excess proton in a hydrogen-bonded water network in bacteriorhodopsin.

Authors:  V Z Spassov; H Luecke; K Gerwert; D Bashford
Journal:  J Mol Biol       Date:  2001-09-07       Impact factor: 5.469

8.  Glutamic acid 204 is the terminal proton release group at the extracellular surface of bacteriorhodopsin.

Authors:  L S Brown; J Sasaki; H Kandori; A Maeda; R Needleman; J K Lanyi
Journal:  J Biol Chem       Date:  1995-11-10       Impact factor: 5.157

9.  Effects of substitution of tyrosine 57 with asparagine and phenylalanine on the properties of bacteriorhodopsin.

Authors:  R Govindjec; M Kono; S P Balashov; E Imasheva; M Sheves; T G Ebrey
Journal:  Biochemistry       Date:  1995-04-11       Impact factor: 3.162

10.  Homologous bacterio-opsin-encoding gene expression via site-specific vector integration.

Authors:  E Ferrando; U Schweiger; D Oesterhelt
Journal:  Gene       Date:  1993-03-15       Impact factor: 3.688

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  51 in total

1.  Secondary water pore formation for proton transport in a ClC exchanger revealed by an atomistic molecular-dynamics simulation.

Authors:  Youn Jo Ko; Won Ho Jo
Journal:  Biophys J       Date:  2010-05-19       Impact factor: 4.033

2.  Photoreactions and structural changes of anabaena sensory rhodopsin.

Authors:  Akira Kawanabe; Hideki Kandori
Journal:  Sensors (Basel)       Date:  2009-12-03       Impact factor: 3.576

Review 3.  Energy transduction: proton transfer through the respiratory complexes.

Authors:  Jonathan P Hosler; Shelagh Ferguson-Miller; Denise A Mills
Journal:  Annu Rev Biochem       Date:  2006       Impact factor: 23.643

4.  pH-dependent transitions in xanthorhodopsin.

Authors:  Eleonora S Imasheva; Sergei P Balashov; Jennifer M Wang; Janos K Lanyi
Journal:  Photochem Photobiol       Date:  2006 Nov-Dec       Impact factor: 3.421

5.  Structural changes in the L photointermediate of bacteriorhodopsin.

Authors:  Janos K Lanyi; Brigitte Schobert
Journal:  J Mol Biol       Date:  2006-11-10       Impact factor: 5.469

6.  Storage of an excess proton in the hydrogen-bonded network of the d-pathway of cytochrome C oxidase: identification of a protonated water cluster.

Authors:  Jiancong Xu; Martyn A Sharpe; Ling Qin; Shelagh Ferguson-Miller; Gregory A Voth
Journal:  J Am Chem Soc       Date:  2007-02-20       Impact factor: 15.419

Review 7.  Alternative proton binding mode in ATP synthases.

Authors:  Christoph von Ballmoos
Journal:  J Bioenerg Biomembr       Date:  2007-12       Impact factor: 2.945

Review 8.  Microbial and animal rhodopsins: structures, functions, and molecular mechanisms.

Authors:  Oliver P Ernst; David T Lodowski; Marcus Elstner; Peter Hegemann; Leonid S Brown; Hideki Kandori
Journal:  Chem Rev       Date:  2013-12-23       Impact factor: 60.622

9.  Density functional tight binding: values of semi-empirical methods in an ab initio era.

Authors:  Qiang Cui; Marcus Elstner
Journal:  Phys Chem Chem Phys       Date:  2014-07-28       Impact factor: 3.676

Review 10.  Protons and how they are transported by proton pumps.

Authors:  M J Buch-Pedersen; B P Pedersen; B Veierskov; P Nissen; M G Palmgren
Journal:  Pflugers Arch       Date:  2008-05-06       Impact factor: 3.657

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