A century of exercise physiology: effects of muscle contraction and exercise on skeletal muscle Na+,K+-ATPase, Na+ and K+ ions, and on plasma K+ concentration-historical developments

被引:7
|
作者
McKenna, Michael J. [1 ,2 ,3 ]
Renaud, Jean-Marc [4 ]
Ortenblad, Niels [5 ]
Overgaard, Kristian [6 ]
机构
[1] Victoria Univ, Inst Hlth & Sport, Melbourne, Vic 8001, Australia
[2] Southwest Univ, Coll Phys Educ, Chongqing, Peoples R China
[3] Zhuhai Coll Sci & Technol, Coll Sports Sci, Zhuhai, Peoples R China
[4] Univ Ottawa, Neuromuscular Res Ctr, Dept Cellular & Mol Med, Ottawa, ON, Canada
[5] Univ Southern Denmark, Dept Sports Sci & Clin Biomech, Odense, Denmark
[6] Aarhus Univ, Dept Publ Hlth, Exercise Biol, Aarhus, Denmark
关键词
Skeletal muscle; Plasma; Potassium; Sodium; Exercise; Fatigue; FXYD; Na+; K+-pump; CONGESTIVE-HEART-FAILURE; ACTIVATED ADENOSINE-TRIPHOSPHATASE; SODIUM-POTASSIUM TRANSPORT; OUABAIN-H-3; BINDING-SITES; ATPASE MESSENGER-RNA; N-ACETYLCYSTEINE INFUSION; TERM WORK CAPACITY; MOLECULAR-FORMS; PROTEIN-KINASE-C; INTENSE EXERCISE;
D O I
10.1007/s00421-023-05335-9
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
This historical review traces key discoveries regarding K+ and Na+ ions in skeletal muscle at rest and with exercise, including contents and concentrations, Na+,K+-ATPase (NKA) and exercise effects on plasma [K+] in humans. Following initial measures in 1896 of muscle contents in various species, including humans, electrical stimulation of animal muscle showed K+ loss and gains in Na+, Cl- and H(2)0, then subsequently bidirectional muscle K+ and Na+ fluxes. After NKA discovery in 1957, methods were developed to quantify muscle NKA activity via rates of ATP hydrolysis, Na+/K+ radioisotope fluxes, [H-3]-ouabain binding and phosphatase activity. Since then, it became clear that NKA plays a central role in Na+/K+ homeostasis and that NKA content and activity are regulated by muscle contractions and numerous hormones. During intense exercise in humans, muscle intracellular [K+] falls by 21 mM (range - 13 to - 39 mM), interstitial [K+] increases to 12-13 mM, and plasma [K+] rises to 6-8 mM, whilst post-exercise plasma [K+] falls rapidly, reflecting increased muscle NKA activity. Contractions were shown to increase NKA activity in proportion to activation frequency in animal intact muscle preparations. In human muscle, [H-3]-ouabain-binding content fully quantifies NKA content, whilst the method mainly detects alpha(2) isoforms in rats. Acute or chronic exercise affects human muscle K+, NKA content, activity, isoforms and phospholemman (FXYD1). Numerous hormones, pharmacological and dietary interventions, altered acid-base or redox states, exercise training and physical inactivity modulate plasma [K+] during exercise. Finally, historical research approaches largely excluded female participants and typically used very small sample sizes.
引用
收藏
页码:681 / 751
页数:71
相关论文
共 50 条
  • [31] INTERACTION OF SODIUM AND POTASSIUM-IONS WITH NA+,K+-ATPASE .4. AFFINITY CHANGE FOR K+ AND NA+ OF NA+,K+-ATPASE IN THE CYCLE OF THE ATP HYDROLYSIS REACTION
    HOMAREDA, H
    NAGANO, Y
    MATSUI, H
    JOURNAL OF BIOCHEMISTRY, 1991, 109 (01): : 70 - 77
  • [32] THE NA+, K+ ATPASE IN UREMIA
    BOSCH, RJ
    LOPEZNOVOA, JM
    NEFROLOGIA, 1990, 10 (04): : 343 - 351
  • [33] Na+/K+ ATPase inhibitors
    Edwards, P
    DRUG DISCOVERY TODAY, 2001, 6 (05) : 271 - 271
  • [34] Effect of dexamethasone on skeletal muscle Na+,K+ pump subunit specific expression and K+ homeostasis during exercise in humans
    Nordsborg, Nikolai
    Ovesen, Jakob
    Thomassen, Martin
    Zangenberg, Mathias
    Jons, Christian
    Iaia, F. Marcello
    Nielsen, Jens Jung
    Bangsbo, Jens
    JOURNAL OF PHYSIOLOGY-LONDON, 2008, 586 (05): : 1447 - 1459
  • [35] EFFECTS OF HYPOKALEMIA ON THE PROPERTIES AND EXPRESSION OF THE (NA+,K+)-ATPASE OF RAT SKELETAL-MUSCLE
    HSU, YM
    GUIDOTTI, G
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1991, 266 (01) : 427 - 433
  • [36] Acute oral digoxin in healthy adults hastens fatigue and increases plasma K+ during intense exercise, despite preserved skeletal muscle Na+,K+-ATPase
    Atanasovska, Tania
    Farr, Trevor
    Smith, Robert
    Petersen, Aaron C.
    Garnham, Andrew
    Andersen, Mitchell J.
    Krum, Henry
    Wong, Chiew
    Mckenna, Michael J.
    JOURNAL OF PHYSIOLOGY-LONDON, 2024, 602 (24): : 6849 - 6869
  • [37] The sidedness of the direct route of occlusion of K+ in the Na+/K+-ATPase
    González-Lebrero, RM
    Kaufman, SB
    Garrahan, PJ
    Rossi, RC
    NA,K-ATPASE AND RELATED CATION PUMPS: STRUCTURE, FUNCTION, AND REGULATORY MECHANISMS, 2003, 986 : 301 - 303
  • [38] Identification and function of a cytoplasmic K+ site of the Na+,K+-ATPase
    Schack, Vivien Rodacker
    Morth, Jens Preben
    Toustrup-Jensen, Mads S.
    Anthonisen, Anne Nyholm
    Nissen, Poul
    Andersen, Jens Peter
    Vilsen, Bente
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (41) : 27982 - 27990
  • [39] Specificity and reversibility of the training effects on the concentration of Na+,K+-ATPase in foal skeletal muscle
    Suwannachot, P
    Verkleij, CB
    Kocsis, S
    van Weeren, PR
    Everts, ME
    EQUINE VETERINARY JOURNAL, 2001, 33 (03) : 250 - 255
  • [40] Digoxin and exercise effects on skeletal muscle Na+,K+-ATPase isoform gene expression in healthy humans
    McKenna, Michael J.
    Gong, Xiaofei
    Petersen, Aaron C.
    Sostaric, Simon
    Goodman, Craig A.
    Garnham, Andrew
    Aw, Tai-Juan
    Steward, Collene H.
    Murphy, Kate T.
    Carey, Kate A.
    Krum, Henry
    Snow, Rodney J.
    Cameron-Smith, David
    EXPERIMENTAL PHYSIOLOGY, 2024, 109 (11) : 1909 - 1921