Literature DB >> 14745803

Site-directed 13C solid-state NMR studies on membrane proteins: strategy and goals toward revealing conformation and dynamics as illustrated for bacteriorhodopsin labeled with [1-13C]amino acid residues.

Hazime Saitô1, Jun Mikami, Satoru Yamaguchi, Michikazu Tanio, Atushi Kira, Tadashi Arakawa, Kazutoshi Yamamoto, Satoru Tuzi.   

Abstract

We have so far demonstrated that well-resolved and site-specifically assigned (13)C peaks as recorded by site-directed NMR study on (13)C-labeled membrane proteins can serve as a convenient probe to reveal their local conformation and dynamics. We attempted here to clarify the extent to which (13)C NMR spectra of (13)C-labeled fully hydrated bacteriorhodopsin (bR) as a typical membrane protein are visible or well resolved in the presence of inherent fluctuation motions with frequency of 10(2)-10(8) Hz, especially at the membrane surfaces. Accordingly, we estimated the relative proportion of (13)C NMR signals from the surface areas with and without peak suppression by the accelerated transverse relaxation effect by surface-bound Mn(2+) ions, which could be effective for residues within 8.7 angstroms of the membrane surface. It turned out that the experimental findings are consistent with the predicted amount of amino acid residues under consideration located within 8.7 angstroms of the surface for [1-(13)C]Val- and Ile-labeled bR and also [3-(13)C]Ala-bR. In contrast, (13)C NMR peaks from such surfaces area are almost completely or partially suppressed for [1-(13)C]Gly-, Ala-, Leu-, Phe- and Trp-labeled bR, as a result of plausible interference of the fluctuation frequency with frequency of magic angle spinning (10(4) Hz). We further assigned several (13)C NMR signals of [1-(13)C] Val-, Trp- and Ile-labeled bR on the basis of a variety of site-directed mutants with reference to those of the wild type. Further, we recorded the (13)C NMR of bR in lipid bilayers to search for the optimal conditions to be able to obtain signals with the highest peak intensities and spectral resolution. Backbone dynamics turn out to be essential for recording (13)C NMR spectra so as to escape from motional frequencies of the order of 10(4)-10(5) Hz, either in the direction of accelerated fluctuation or slowed motions in the direction of forming the 2D array. Copyright 2004 John Wiley & Sons, Ltd.

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Year:  2004        PMID: 14745803     DOI: 10.1002/mrc.1325

Source DB:  PubMed          Journal:  Magn Reson Chem        ISSN: 0749-1581            Impact factor:   2.447


  5 in total

Review 1.  Chemical shift tensor - the heart of NMR: Insights into biological aspects of proteins.

Authors:  Hazime Saitô; Isao Ando; Ayyalusamy Ramamoorthy
Journal:  Prog Nucl Magn Reson Spectrosc       Date:  2010-05-07       Impact factor: 9.795

2.  Conformation and dynamics of the [3-(13)C]Ala, [1-(13)C]Val-labeled truncated pharaonis transducer, pHtrII(1-159), as revealed by site-directed (13)C solid-state NMR: changes due to association with phoborhodopsin (sensory rhodopsin II).

Authors:  Satoru Yamaguchi; Kazumi Shimono; Yuki Sudo; Satoru Tuzi; Akira Naito; Naoki Kamo; Hazime Saitô
Journal:  Biophys J       Date:  2004-05       Impact factor: 4.033

3.  Significance of low-frequency local fluctuation motions in the transmembrane B and C alpha-helices of bacteriorhodopsin, to facilitate efficient proton uptake from the cytoplasmic surface, as revealed by site-directed solid-state 13C NMR.

Authors:  Atsushi Kira; Michikazu Tanio; Satoru Tuzi; Hazime Saitô
Journal:  Eur Biophys J       Date:  2004-05-05       Impact factor: 1.733

4.  Solution NMR of signal peptidase, a membrane protein.

Authors:  Monika Musial-Siwek; Debra A Kendall; Philip L Yeagle
Journal:  Biochim Biophys Acta       Date:  2007-12-14

5.  Glutamic acid residues of bacteriorhodopsin at the extracellular surface as determinants for conformation and dynamics as revealed by site-directed solid-state 13C NMR.

Authors:  Hazime Saitô; Satoru Yamaguchi; Keiji Ogawa; Satoru Tuzi; Mercedes Márquez; Carolina Sanz; Esteve Padrós
Journal:  Biophys J       Date:  2004-03       Impact factor: 4.033

  5 in total

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