Assembly of functional CFTR chloride channels

被引:180
|
作者
Riordan, JR [1 ]
机构
[1] Mayo Clin Scottsdale, Coll Med, Scottsdale, AZ 85259 USA
关键词
ligand-gated; hydrolyzable-ligand; monomeric channel; CFTR domains; CFTR activation;
D O I
10.1146/annurev.physiol.67.032003.154107
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The assembly of the cystic fibrosis transmembrane regulator (CFTR) chloride channel is of interest from the broad perspective of understanding how ion channels and ABC transporters are formed as well as dealing with the mis-assembly of CFTR in cystic fibrosis. CFTR is functionally distinct from other ABC transporters because it permits bidirectional permeation of anions rather than vectorial transport of solutes. This adaptation of the ABC transporter structure can be rationalized by considering CFTR as a hydrolyzable-ligand-gated channel with cytoplasmic ATP as ligand. Channel gating is initiated by ligand binding when the protein is also phosphorylated by protein kinase A and made reversible by ligand hydrolysis. The two nucleotide-binding sites play different roles in channel activation. CFTR self-associates, possibly as a function of its activation, but most evidence, including the low-resolution three-dimensional structure, indicates that the channel is monomeric. Domain assembly and interaction within the monomer is critical in maturation, stability, and function of the protein. Disease-associated mutations, including the most common, Delta F508, interfere with domain folding and association, which occur both co- and post-translationally. Intermolecular interactions of mature CFTR have been detected primarily with the N- and C-terminal tails, and these interactions have some impact not only on channel function but also on localization and processing within the cell. The biosynthetic processing of the nascent polypeptide leading to channel assembly involves transient interactions with numerous chaperones and enzymes on both sides of the endoplasmic reticulum. membrane.
引用
收藏
页码:701 / 718
页数:22
相关论文
共 50 条
  • [1] Functional role of CFTR chloride channels in airway and gut epithelia.
    Cuthbert, A
    BRITISH JOURNAL OF PHARMACOLOGY, 1999, 128 : U48 - U48
  • [2] Glibenclamide blockade of CFTR chloride channels
    Schultz, BD
    DeRoos, ADG
    Venglarik, CJ
    Singh, AK
    Frizzell, RA
    Bridges, RJ
    AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 1996, 271 (02) : L192 - L200
  • [3] CFTR chloride channels in human and simian heart
    Warth, JD
    Collier, ML
    Hart, P
    Geary, Y
    Gelband, CH
    Chapman, T
    Horowitz, B
    Hume, JR
    CARDIOVASCULAR RESEARCH, 1996, 31 (04) : 615 - 624
  • [4] Modulation of CFTR chloride channels by calyculin A and genistein
    Yang, ICH
    Cheng, TH
    Wang, F
    Price, EM
    Hwang, TC
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 1997, 272 (01): : C142 - C155
  • [5] Reversible silencing of CFTR chloride channels by glutathionylation
    Wang, W
    Oliva, C
    Li, G
    Holmgren, A
    Lillig, CH
    Kirk, KL
    JOURNAL OF GENERAL PHYSIOLOGY, 2005, 125 (02): : 127 - 141
  • [6] Functional architecture of the CFTR chloride channel
    Linsdell, Paul
    MOLECULAR MEMBRANE BIOLOGY, 2014, 31 (01) : 1 - 16
  • [7] Novel Function of CFTR Chloride Channels in Diabetic Cardiomyopathy
    Duan, Dayue Darrel
    Ye, Lingyu Linda
    DIABETES, 2015, 64 : A122 - A122
  • [8] Gating of CFTR chloride channels by nucleoside triphosphates.
    Zeltwanger, SD
    Wang, F
    Hwang, TC
    BIOPHYSICAL JOURNAL, 1998, 74 (02) : A395 - A395
  • [9] CFTR CHLORIDE CHANNELS IN INNER MEDULLARY COLLECTING DUCT
    VANDORPE, D
    KIZER, N
    GUGGINO, WB
    STANTON, B
    FASEB JOURNAL, 1994, 8 (04): : A528 - A528
  • [10] EFFECT OF DELETION MUTATIONS ON THE FUNCTION OF CFTR CHLORIDE CHANNELS
    RICH, DP
    GREGORY, RJ
    CHENG, SH
    SMITH, AE
    WELSH, MJ
    RECEPTORS & CHANNELS, 1993, 1 (03): : 221 - 232