NMR structure of inactivation gates from mammalian voltage-dependent potassium channels

被引:96
作者
Antz, C
Geyer, M
Fakler, B
Schott, MK
Guy, HR
Frank, R
Ruppersberg, JP
Kalbitzer, HR
机构
[1] MAX PLANCK INST MED RES,DEPT BIOPHYS,D-69120 HEIDELBERG,GERMANY
[2] NIH,MATH BIOL LAB,BETHESDA,MD 20892
[3] ZENTRUM MOL BIOL,D-69120 HEIDELBERG,GERMANY
[4] UNIV TUBINGEN,INST PHYSIOL,D-72076 TUBINGEN,GERMANY
关键词
D O I
10.1038/385272a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The electrical signalling properties of neurons originate largely from the gating properties of their ion channels, N-type inactivation of voltage-gated potassium (K-v) channels is the best-understood gating transition in ion channels, and occurs by a 'ball-and-chain' type mechanism. In this mechanism an N-terminal domain (inactivation gate), which is tethered to the cytoplasmic side of the channel protein by a protease-cleavable chain, binds to its receptor at the inner vestibule of the channel, thereby physically blocking the pore(1,2). Even when synthesized as a peptide, ball domains restore inactivation in K-v channels whose inactivation domains have been deleted(2,3), Using high-resolution nuclear magnetic resonance (NMR) spectroscopy, we analysed the three-dimensional structure of the ball peptides from two rapidly inactivating mammalian K-v channels (Raw3 (K(v)3.4) and RCK4 (K(v)1.4)). The inactivation peptide of Raw3 (Raw3-IP) has a compact structure that exposes two phosphorylation sites and allows the formation of an intramolecular disulphide bridge between two spatially close cysteine residues. Raw3-IP exhibits a characteristic surface charge pattern with a positively charged, a hydrophobic, and a negatively charged region, The RCK4 inactivation peptide (RCK4-IP) shows a similar spatial distribution of charged and uncharged regions, but is more flexible and less ordered in its amino-terminal part.
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页码:272 / 275
页数:4
相关论文
共 24 条
  • [1] AUER WP, 1976, J CHEM PHYS, V64, P2229
  • [2] BRUNGER AT, 1992, X PLOR VERSION 3 1
  • [3] ELIMINATION OF RAPID POTASSIUM CHANNEL INACTIVATION BY PHOSPHORYLATION OF THE INACTIVATION GATE
    COVARRUBIAS, M
    WEI, AA
    SALKOFF, L
    VYAS, TB
    [J]. NEURON, 1994, 13 (06) : 1403 - 1412
  • [4] ASSIGNMENT OF COMPLEX H-1-NMR SPECTRA VIA TWO-DIMENSIONAL HOMONUCLEAR HARTMANN-HAHN SPECTROSCOPY
    DAVIS, DG
    BAX, A
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1985, 107 (09) : 2820 - 2821
  • [5] ADOPTION OF BETA-STRUCTURE BY THE INACTIVATING BALL PEPTIDE OF THE SHAKER-B POTASSIUM CHANNEL
    FERNANDEZBALLESTER, G
    GAVILANES, F
    ALBAR, JP
    CRIADO, M
    FERRAGUT, JA
    GONZALEZROS, JM
    [J]. BIOPHYSICAL JOURNAL, 1995, 68 (03) : 858 - 865
  • [6] FRANK R, 1988, MODERN METHODS PROTE
  • [7] GUY HR, 1992, BIOPHYS J, V62, P238
  • [8] BIOPHYSICAL AND MOLECULAR MECHANISMS OF SHAKER POTASSIUM CHANNEL INACTIVATION
    HOSHI, T
    ZAGOTTA, WN
    ALDRICH, RW
    [J]. SCIENCE, 1990, 250 (4980) : 533 - 538
  • [9] INVESTIGATION OF EXCHANGE PROCESSES BY 2-DIMENSIONAL NMR-SPECTROSCOPY
    JEENER, J
    MEIER, BH
    BACHMANN, P
    ERNST, RR
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1979, 71 (11) : 4546 - 4553
  • [10] OPTIMIZATION BY SIMULATED ANNEALING
    KIRKPATRICK, S
    GELATT, CD
    VECCHI, MP
    [J]. SCIENCE, 1983, 220 (4598) : 671 - 680