Increased excitability of acidified skeletal muscle: Role of chloride conductance

被引:111
作者
Pedersen, TH [1 ]
de Paoli, F [1 ]
Nielsen, OB [1 ]
机构
[1] Univ Aarhus, Inst Physiol & biophys, DK-8000 Aarhus C, Denmark
关键词
lactic acid; muscle fatigue; action potentials; Na+ channels; Cl-; channels;
D O I
10.1085/jgp.200409173
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Generation of the action potentials (AP) necessary to activate skeletal muscle fibers requires that inward membrane currents exceed outward currents and thereby depolarize the fibers to the voltage threshold for AP generation. Excitability therefore depends on both excitatory Na+ currents and inhibitory K+ and Cl- currents. During intensive exercise, active muscle loses K+ and extracellular K+ ([K+](o)) increases. Since high [K+](o) leads to depolarization and ensuing inactivation of voltage-gated Na+ channels and loss of excitability in isolated muscles, exercise-induced loss of K+ is likely to reduce Muscle excitability and thereby contribute to muscle fatigue in vivo. Intensive exercise, however, also leads to muscle acidification, which recently was shown to recover excitability in isolated K+-depressed muscles of the rat. Here we show that in rat soleus muscles at 11 mM K+, the almost complete recovery of compound action potentials and force with muscle acidification (CO, changed from 5 to 24%) was associated with reduced chloride conductance (1731 +/- 151 to 938 +/- 64 muS/cm, P < 0.01) but not with changes in potassium conductance (405 +/- 20 to 455 +/- 30 muS/cm(2), P < 0. 16). Furthermore, acidification reduced the rheobase current by 26% at 4 mM K+ and increased the number of excitable fibers at elevated [K+](o). At 11 mM K+ and normal pH, a recovery of excitability and force similar to the observations with muscle acidification could be induced by reducing extracellular Cl- or by blocking the major muscle Cl- channel, ClC-1, with 30 muM 9-AC. It is concluded that recovery of excitability in K+-depressed muscles induced by muscle acidification is related to reduction in the inhibitory Cl- currents, possibly through inhibition of ClC-1 channels, and acidosis thereby reduces the Na+ current needed to generate and propagate an AP. Thus short term regulation of Cl- channels is important for maintenance of excitability in working muscle.
引用
收藏
页码:237 / 246
页数:10
相关论文
共 39 条
[1]   A COMPARATIVE STUDY OF MEMBRANE PROPERTIES OF INNERVATED AND CHRONICALLY DENERVATED FAST AND SLOW SKELETAL MUSCLES OF RAT [J].
ALBUQUERQUE, EX ;
THESLEFF, S .
ACTA PHYSIOLOGICA SCANDINAVICA, 1968, 73 (04) :471-+
[2]   MEMBRANE CONSTANTS OF MAMMALIAN MUSCLE FIBRES [J].
BOYD, IA ;
MARTIN, AR .
JOURNAL OF PHYSIOLOGY-LONDON, 1959, 147 (03) :450-457
[3]   MUSCLE CHLORIDE CHANNELS [J].
BRETAG, AH .
PHYSIOLOGICAL REVIEWS, 1987, 67 (02) :618-724
[4]   Protective role of extracellular chloride in fatigue of isolated mammalian skeletal muscle [J].
Cairns, SP ;
Ruzhynsky, V ;
Renaud, JM .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2004, 287 (03) :C762-C770
[5]   Different effects of raised [K+](0) on membrane potential and contraction in mouse fast- and slow-twitch muscle [J].
Cairns, SP ;
Hing, WA ;
Slack, JR ;
Mills, RG ;
Loiselle, DS .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 1997, 273 (02) :C598-C611
[6]   RELATION BETWEEN EXTRACELLULAR [K+], MEMBRANE-POTENTIAL AND CONTRACTION IN RAT SOLEUS MUSCLE - MODULATION BY THE NA+-K+ PUMP [J].
CAIRNS, SP ;
FLATMAN, JA ;
CLAUSEN, T .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 1995, 430 (06) :909-915
[7]   Tissue spaces in rat heart, liver, and skeletal muscle in vivo [J].
Cieslar, J ;
Huang, MT ;
Dobson, GP .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 1998, 275 (05) :R1530-R1536
[8]   Effect of transverse-tubular chloride conductance on excitability in skinned skeletal muscle fibres of rat and toad [J].
Coonan, JR ;
Lamb, GD .
JOURNAL OF PHYSIOLOGY-LONDON, 1998, 509 (02) :551-564
[9]   CELLULAR MECHANISMS OF MUSCLE FATIGUE [J].
FITTS, RH .
PHYSIOLOGICAL REVIEWS, 1994, 74 (01) :49-94
[10]   Interstitial and arterial-venous [K+] in human calf muscle during dynamic exercise:: effect of ischaemia and relation to muscle pain [J].
Green, S ;
Langberg, H ;
Skovgaard, D ;
Bülow, J ;
Kjær, M .
JOURNAL OF PHYSIOLOGY-LONDON, 2000, 529 (03) :849-861