3-DIMENSIONAL STRUCTURE OF HALORHODOPSIN AT 7-ANGSTROM RESOLUTION

被引:116
作者
HAVELKA, WA
HENDERSON, R
OESTERHELT, D
机构
[1] MAX PLANCK INST BIOCHEM, D-82152 MARTINSRIED, GERMANY
[2] MRC, MOLEC BIOL LAB, CAMBRIDGE CB2 2QH, ENGLAND
关键词
CRYOMICROSCOPY; ELECTRON MICROSCOPY; HALORHODOPSIN; RETINAL; TRANSMEMBRANE HELICES;
D O I
10.1016/S0022-2836(05)80151-2
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Two-dimensional crystalline patches containing the light-driven chloride pump, halorhodopsin, appear to form spontaneously in the cell membrane of an overproducing strain of Halobacterium. The three-dimensional structure (space group p42(1)2, a=102 Angstrom) has been analysed by electron cryo-microscopy of tilted specimens. The map shows that halorhodopsin (HR) has an arrangement of seven transmembrane helices similar to that found in the related proton pump bacteriohodopsin (BR). The orientation of the polypeptide framework of HR in the membrane is rotated by 3 degrees relative to BR about an axis in the plane and the intramolecular space between the helices BC FG, which line the cytoplasmic half channel, appears slightly larger in HR than in BR, as would be expected for a chloride channel. The crystals of HR were too small for electron diffraction analysis of tilted specimens, so both the amplitudes and the phases of the Fourier components were obtained from images. This required anisotropic scaling of the image amplitudes in addition to correction for the defocus phase contrast transfer function. The procedure of rescaling the data (in this case roughly equivalent to sharpening with a temperature factor of -490) to compensate for a variety of image and crystal defects may also prove useful in the analysis of other structures for which no prior knowledge of a homologous structure exists and for which only small crystals can be obtained.
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收藏
页码:726 / 738
页数:13
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  • [1] Agard, A least squares method for determining structure factors in 3-dimensional tilted-view reconstructions, J. Mol. Biol., 167, pp. 849-852, (1983)
  • [2] Baldwin, Henderson, Measurement and evaluation of electron diffraction patterns from two-dimensional crystals, Ultramicroscopy, 14, pp. 319-336, (1984)
  • [3] Baldwin, Henderson, Beckmann, Zemlin, Images of purple membrane at 2.8 Å resolution obtained by cryo-electron microscopy, J. Mol. Biol., 202, pp. 585-591, (1988)
  • [4] Bamberg, Hegemann, Oesterhelt, Reconstitution of the light-driven electrogenic ion pump halorhodopsin in black lipid membranes, Biochim. Biophys. Acta, 773, pp. 53-60, (1984)
  • [5] Bamberg, Tittor, Oesterhelt, Light-driven proton or chloride pumping by halorhodopsin, Proc. Nat. Acad. Sci., U.S.A., 90, pp. 639-643, (1993)
  • [6] Blanck, Oesterhelt, The halo-opsin gene. II. Sequence, primary structure of halorhodopsin and comparison with bacteriorhodopsin, EMBO J., 6, pp. 265-273, (1987)
  • [7] Ceska, Henderson, Analysis of high resolution electron diffraction patterns from purple membrane labelled with heavy atoms, J. Mol. Biol., 213, pp. 539-560, (1990)
  • [8] Dencher, Dresselhaus, Zaccai, Buldt, Structural changes in bacteriorhodopsin during proton translocation revealed by neutron diffraction, Proc. Nat. Acad. Sci., U.S.A., 86, pp. 7876-7879, (1989)
  • [9] Havelka, Henderson, Heymann, Oesterhelt, Projection structure of halorhodopsin at 6.1 Å obtained by electron cryomicroscopy, J. Mol. Biol., 234, pp. 837-846, (1993)
  • [10] Henderson, Image contrast in high resolution electron microscopy of biological macromolecules: TMV in ice, Ultramicroscopy, 46, pp. 1-18, (1992)