Molecular structure and physiological function of chloride channels

被引:1035
作者
Jentsch, TJ [1 ]
Stein, V [1 ]
Weinreich, F [1 ]
Zdebik, AA [1 ]
机构
[1] Univ Hamburg, Zent Mol Neurobiol Hamburg, D-20246 Hamburg, Germany
关键词
D O I
10.1152/physrev.00029.2001
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Cl- channels reside both in the plasma membrane and in intracellular organelles. Their functions range from ion homeostasis to cell volume regulation, transepithelial transport, and regulation of electrical excitability. Their physiological roles are impressively illustrated by various inherited diseases and knock-out mouse models. Thus the loss of distinct Cl- channels leads to an impairment of transepithelial transport in cystic fibrosis and Banter's syndrome, to increased muscle excitability in myotonia congenita, to reduced endosomal acidification and impaired endocytosis in Dent's disease, and to impaired extracellular acidification by osteoclasts and osteopetrosis. The disruption of several Cl- channels in mice results in blindness. Several classes of Cl- channels have not yet been identified at the molecular level. Three molecularly distinct Cl- channel families (CLC, CFTR, and ligand-gated GABA and glycine receptors) are well established. Mutagenesis and functional studies have yielded considerable insights into their structure and function. Recently, the detailed structure of bacterial CLC proteins was determined by X-ray analysis of three-dimensional crystals. Nonetheless, they are less well understood than cation channels and show remarkably different biophysical and structural properties. Other gene families (CLIC or CLCA) were also reported to encode Cl- channels but are less well characterized. This review focuses on molecularly identified Cl- channels and their physiological roles.
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页码:503 / 568
页数:66
相关论文
共 723 条
[1]   Fast and slow gating relaxations in the muscle chloride channel CLC-1 [J].
Accardi, A ;
Pusch, M .
JOURNAL OF GENERAL PHYSIOLOGY, 2000, 116 (03) :433-444
[2]  
ADACHI S, 1994, J BIOL CHEM, V269, P17677
[3]   Evidence of evolutionary up-regulation of the single active X chromosome in mammals based on Clc4 expression levels in Mus spretus and Mus musculus [J].
Adler, DA ;
Rugarli, EI ;
Lingenfelter, PA ;
Tsuchiya, K ;
Poslinski, D ;
Liggitt, HD ;
Chapman, VM ;
Elliott, RW ;
Ballabio, A ;
Disteche, CM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (17) :9244-9248
[4]   PROTEIN-KINASE A-MEDIATED PHOSPHORYLATION REDUCES ONLY THE FAST DESENSITIZING GLYCINE CURRENT IN ACUTELY DISSOCIATED VENTROMEDIAL HYPOTHALAMIC NEURONS [J].
AGOPYAN, N ;
TOKUTOMI, N ;
AKAIKE, N .
NEUROSCIENCE, 1993, 56 (03) :605-615
[5]   Chloride channel activity of CIC-2 is modified by the actin cytoskeleton [J].
Ahmed, N ;
Ramjeesingh, M ;
Wong, S ;
Varga, A ;
Garami, E ;
Bear, CE .
BIOCHEMICAL JOURNAL, 2000, 352 :789-794
[6]   FUNCTIONAL-PROPERTIES OF STRYCHNINE-SENSITIVE GLYCINE RECEPTORS EXPRESSED IN XENOPUS OOCYTES INJECTED WITH A SINGLE MESSENGER-RNA [J].
AKAGI, H ;
HIRAI, K ;
HISHINUMA, F .
NEUROSCIENCE RESEARCH, 1991, 11 (01) :28-40
[7]   CLONING OF A GLYCINE RECEPTOR SUBTYPE EXPRESSED IN RAT-BRAIN AND SPINAL-CORD DURING A SPECIFIC PERIOD OF NEURONAL DEVELOPMENT [J].
AKAGI, H ;
HIRAI, K ;
HISHINUMA, F .
FEBS LETTERS, 1991, 281 (1-2) :160-166
[8]   GLYCINE-GATED CHLORIDE CURRENT IN ACUTELY ISOLATED RAT HYPOTHALAMIC NEURONS [J].
AKAIKE, N ;
KANEDA, M .
JOURNAL OF NEUROPHYSIOLOGY, 1989, 62 (06) :1400-1409
[9]   Impaired solute accumulation in inner medulla of Clcnk1 -/- mice kidney [J].
Akizuki, N ;
Uchida, S ;
Sasaki, S ;
Marumo, F .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2001, 280 (01) :F79-F87
[10]   MICROELECTRODE STUDY ON THE IONIC MECHANISMS WHICH CONTRIBUTE TO THE NORADRENALINE-INDUCED DEPOLARIZATION IN ISOLATED CELLS OF THE RABBIT PORTAL-VEIN [J].
AMEDEE, T ;
LARGE, WA .
BRITISH JOURNAL OF PHARMACOLOGY, 1989, 97 (04) :1331-1337