Topological model of membrane domain of the cystic fibrosis transmembrane conductance regulator

被引:5
作者
Gallet, X [1 ]
Festy, F
Ducarme, P
Brasseur, R
Thomas-Soumarmon, A
机构
[1] Fac Sci Agron Etat Gembloux, Ctr Biophys Mol Numer, B-5030 Gembloux, Belgium
[2] Hop Bichat Claude Bernard, INSERM U10, Paris, France
关键词
channel protein; homology; molecular modelling; sequence alignment;
D O I
10.1016/S1093-3263(98)00015-1
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The cystic fibrosis transmembrane conductance regulator is a cAMP-regulated chloride channel, We used molecular modelling to predict 3-D models for the CFTR membrane domain. Hydropathy and residue conservation in all CFTRs as well as in other proteins suggested that the membrane domain is a 12-helix bundle. If the domain is enclosing a channel for chloride, it could be made of five helices. Wt propose two structural models in which both lumenal and cytoplasmic entrances to the chloride pore have a ring of positively charged residues, The inner surface of the channel is covered with neutral polar pills one or two charged residues. Helices that are nor directly involved in the chloride channel could organise to form a second channel; a dimeric symmetrical structure is proposed. Analysis raised interest for helix 5: this hydrophobic fragment is conserved in all CFTRs and aligns with segments present in several different ion channels and transporters. The existence of an FFXXFFXXF motif is proposed. Helix 5 could be an important domain of CFTRs. The models agree with available data from pathological mutations but does not account for the membrane insertion of a hydrophilic fragment of NBD1. (C) 1998 by Elsevier Science Inc.
引用
收藏
页码:72 / +
页数:13
相关论文
共 62 条
[21]   HYPERABSORPTION OF NA+ AND RAISED CA2+-MEDIATED CL- SECRETION IN NASAL EPITHELIA OF CF MICE [J].
GRUBB, BR ;
VICK, RN ;
BOUCHER, RC .
AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 266 (05) :C1478-C1483
[22]   The nucleotide binding folds of the cystic fibrosis transmembrane conductance regulator are extracellularly accessible [J].
Gruis, DB ;
Price, EM .
BIOCHEMISTRY, 1997, 36 (25) :7739-7745
[23]  
GUY HR, 1994, SOC GEN PHY, V49, P197
[24]  
GUY HR, 1990, MONOVALENT CATIONS B, P31
[25]   MODEL FOR THE STRUCTURE OF BACTERIORHODOPSIN BASED ON HIGH-RESOLUTION ELECTRON CRYOMICROSCOPY [J].
HENDERSON, R ;
BALDWIN, JM ;
CESKA, TA ;
ZEMLIN, F ;
BECKMANN, E ;
DOWNING, KH .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 213 (04) :899-929
[26]   CLUSTAL - A PACKAGE FOR PERFORMING MULTIPLE SEQUENCE ALIGNMENT ON A MICROCOMPUTER [J].
HIGGINS, DG ;
SHARP, PM .
GENE, 1988, 73 (01) :237-244
[27]   REGULATION OF THE GATING OF CYSTIC-FIBROSIS TRANSMEMBRANE CONDUCTANCE REGULATOR CL CHANNELS BY PHOSPHORYLATION AND ATP HYDROLYSIS [J].
HWANG, TC ;
NAGEL, G ;
NAIRN, AC ;
GADSBY, DC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (11) :4698-4702
[28]   STRUCTURAL MODEL OF ATP-BINDING PROTEINS ASSOCIATED WITH CYSTIC-FIBROSIS, MULTIDRUG RESISTANCE AND BACTERIAL TRANSPORT [J].
HYDE, SC ;
EMSLEY, P ;
HARTSHORN, MJ ;
MIMMACK, MM ;
GILEADI, U ;
PEARCE, SR ;
GALLAGHER, MP ;
GILL, DR ;
HUBBARD, RE ;
HIGGINS, CF .
NATURE, 1990, 346 (6282) :362-365
[29]   STRUCTURE AT 2.8-ANGSTROM RESOLUTION OF CYTOCHROME-C-OXIDASE FROM PARACOCCUS-DENITRIFICANS [J].
IWATA, S ;
OSTERMEIER, C ;
LUDWIG, B ;
MICHEL, H .
NATURE, 1995, 376 (6542) :660-669
[30]   IDENTIFICATION OF THE CYSTIC-FIBROSIS GENE - GENETIC-ANALYSIS [J].
KEREM, BS ;
ROMMENS, JM ;
BUCHANAN, JA ;
MARKIEWICZ, D ;
COX, TK ;
CHAKRAVARTI, A ;
BUCHWALD, M ;
TSUI, LC .
SCIENCE, 1989, 245 (4922) :1073-1080