The pattern of disulfide linkages in the extracellular loop regions of connexin 32 suggests a model for the docking interface of gap junctions

被引:166
作者
Foote, CI [1 ]
Zhou, L [1 ]
Zhu, X [1 ]
Nicholson, BJ [1 ]
机构
[1] SUNY Buffalo, Dept Biol Sci, Buffalo, NY 14260 USA
关键词
D O I
10.1083/jcb.140.5.1187
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Connexins, like true cell adhesion molecules, have extracellular domains that provide strong and specific homophilic, and in some cases, heterophilic interactions between cells. Though the structure of the binding domains of adhesion proteins have been determined, the extracellular domains of connexins, consisting of two loops of similar to 34-37 amino acids each, are not easily studied in isolation from the rest of the molecule. As an alternative, we used a novel application of site-directed mutagenesis in which four of the six conserved cysteines in the extracellular loops of connexin 32 were moved individually and in all possible pairwise and some quadruple combinations. This mapping allowed us to deduce that all disulfides form between the two loops of a single connexin, with the first cysteine in one loop connected to the third of the other. Furthermore, the periodicity of movements that produced functional channels indicated that these loops are likely to form antiparallel beta sheets. A possible model that could explain how these domains from apposed connexins interact to form a complete channel is discussed.
引用
收藏
页码:1187 / 1197
页数:11
相关论文
共 52 条
  • [1] IDENTIFICATION OF ACETYLCHOLINE-RECEPTOR CHANNEL-LINING RESIDUES IN THE ENTIRE M2 SEGMENT OF THE ALPHA-SUBUNIT
    AKABAS, MH
    KAUFMANN, C
    ARCHDEACON, P
    KARLIN, A
    [J]. NEURON, 1994, 13 (04) : 919 - 927
  • [2] GAP-JUNCTIONS FORMED BY CONNEXIN-26 AND CONNEXIN-32 ALONE AND IN COMBINATION ARE DIFFERENTLY AFFECTED BY APPLIED VOLTAGE
    BARRIO, LC
    SUCHYNA, T
    BARGIELLO, T
    XU, LX
    ROGINSKI, RS
    BENNETT, MVL
    NICHOLSON, BJ
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1991, 88 (19) : 8410 - 8414
  • [3] CASCIO M, 1990, J BIOL CHEM, V265, P2358
  • [4] CASPAR DL, 1907, J CELL BIOL R, V74, P605
  • [5] MUTATIONAL ANALYSIS OF GAP JUNCTION FORMATION
    DAHL, G
    WERNER, R
    LEVINE, E
    RABADANDIEHL, C
    [J]. BIOPHYSICAL JOURNAL, 1992, 62 (01) : 172 - 182
  • [6] GAP-JUNCTIONS IN THE BRAIN - WHERE, WHAT TYPE, HOW MANY AND WHY
    DERMIETZEL, R
    SPRAY, DC
    [J]. TRENDS IN NEUROSCIENCES, 1993, 16 (05) : 186 - 192
  • [7] DISTINCT BEHAVIOR OF CONNEXIN56 AND CONNEXIN46 GAP JUNCTIONAL CHANNELS CAN BE PREDICTED FROM THE BEHAVIOR OF THEIR HEMI-GAP-JUNCTIONAL CHANNELS
    EBIHARA, L
    BERTHOUD, VM
    BEYER, EC
    [J]. BIOPHYSICAL JOURNAL, 1995, 68 (05) : 1796 - 1803
  • [8] SPECIFIC PERMEABILITY AND SELECTIVE FORMATION OF GAP JUNCTION CHANNELS IN CONNEXIN-TRANSFECTED HELA-CELLS
    ELFGANG, C
    ECKERT, R
    LICHTENBERGFRATE, H
    BUTTERWECK, A
    TRAUB, O
    KLEIN, RA
    HULSER, DF
    WILLECKE, K
    [J]. JOURNAL OF CELL BIOLOGY, 1995, 129 (03) : 805 - 817
  • [9] MEMBRANE INSERTION OF GAP JUNCTION CONNEXINS - POLYTOPIC CHANNEL-FORMING MEMBRANE-PROTEINS
    FALK, MM
    KUMAR, NM
    GILULA, NB
    [J]. JOURNAL OF CELL BIOLOGY, 1994, 127 (02) : 343 - 354
  • [10] FULTON BP, 1995, PERSPECT DEV NEUROBI, V2, P327