Vacuole formation in fatigued skeletal muscle fibres from frog and mouse:: effects of extracellular lactate

被引:44
|
作者
Lännergren, J [1 ]
Bruton, JD [1 ]
Westerblad, H [1 ]
机构
[1] Karolinska Inst, Dept Physiol & Pharmacol, S-17177 Stockholm, Sweden
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2000年 / 526卷 / 03期
关键词
D O I
10.1111/j.1469-7793.2000.00597.x
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. Isolated, living muscle fibres from either Xenopus or mouse were observed in a confocal microscope and t-tubules were visualized with sulforhodamine B. Observations were made before and after fatiguing stimulation. In addition, experiments were performed on fibres observed in an ordinary light microscope with dark-field illumination 2. In Xenopus fibres, recovering after fatigue, t-tubules started to show dilatations 2-5 min post-fatigue. These swellings increased in size over the next 10-20 min to form vacuoles. After 2-3 h of recovery the appearance of the fibres was again normal and force production, which had been markedly depressed 10-40 min post-fatigue, was close to control. Vacuoles were not observed in mouse fibres, fatigued with the same protocol and allowed to recover. 3. In Xenopus fibres, fatigued in normal Ringer solution and allowed to recover in Ringer solution with 30-50 mM L-lactate substituting for chloride (lactate-Ringer), the number and size of vacuoles were markedly reduced. Also, force recovery was significantly faster. Replacement of chloride by methyl sulphate or glucuronate had no effect on vacuolation. 4. Resting Xenopus fibres exposed to 50 mar lactate-Ringer and transferred to normal Ringer solution displayed vacuoles within 5-10 min, but to a smaller extent than after fatigue. Vacuolation was not associated with marked force reduction. 5. Mouse fibres, fatigued in 50 mM lactate-Tyrode (L-lactate substituting for chloride in Tyrode solution) and recovering in normal Tyrode solution, displayed vacuoles for a limited period post-fatigue. Vacuolation had no effect on force production. 6. The results are consistent with the view that lactate, formed during fatigue, is transported into the t-tubules where it attracts water and causes t-tubule swelling and vacuolation. This vacuolation may be counteracted in vivo due to a gradual extracellular accumulation of lactate during fatigue.
引用
收藏
页码:597 / 611
页数:15
相关论文
共 50 条
  • [31] Effects of lactate administration on hypertrophy and mTOR signaling activation in mouse skeletal muscle
    Shirai, Takanaga
    Kitaoka, Yu
    Uemichi, Kazuki
    Tokinoya, Katsuyuld
    Takeda, Kohei
    Takemasa, Tohru
    PHYSIOLOGICAL REPORTS, 2022, 10 (16):
  • [32] Differential effects of contractile potentiators on action potential-induced Ca2+ transients of frog and mouse skeletal muscle fibres
    Carlo, Caputo u
    Pura, Bolanos
    Magaly, Ramos
    Marino, DiFranco
    JOURNAL OF MUSCLE RESEARCH AND CELL MOTILITY, 2016, 37 (4-5) : 169 - 180
  • [33] EFFECTS OF ELEVATED EXTRACELLULAR CALCIUM ON EARLY AND LATE AFTERPOTENTIALS IN FROG SKELETAL-MUSCLE
    HOWELL, JN
    SHANKAR, A
    MOLEFHE, T
    BIOPHYSICAL JOURNAL, 1983, 41 (02) : A180 - A180
  • [34] Calcium transients in developing mouse skeletal muscle fibres
    Capote, J
    Bolaños, P
    Schuhmeier, RP
    Melzer, W
    Caputo, C
    JOURNAL OF PHYSIOLOGY-LONDON, 2005, 564 (02): : 451 - 464
  • [35] A simplified immunohistochemical classification of skeletal muscle fibres in mouse
    Kammoun, M.
    Cassar-Malek, I.
    Meunier, B.
    Picard, B.
    EUROPEAN JOURNAL OF HISTOCHEMISTRY, 2014, 58 (02): : 163 - 168
  • [36] Development and composition of skeletal muscle fibres in mouse oesophagus
    Zhao, WF
    Dhoot, GK
    JOURNAL OF MUSCLE RESEARCH AND CELL MOTILITY, 2000, 21 (05) : 463 - 473
  • [37] Development and composition of skeletal muscle fibres in mouse oesophagus
    Wanfeng Zhao
    Gurtej K. Dhoot
    Journal of Muscle Research & Cell Motility, 2000, 21 : 463 - 473
  • [38] The position and morphology of honeycombs in normal skeletal muscle fibres of the healthy frog
    Voigt, Tilman
    Dauber, Wolfgang
    Microscopy, 2004, 53 (06): : 671 - 675
  • [39] RISING PHASE OF ACTIVE STATE IN SINGLE SKELETAL MUSCLE FIBRES OF FROG
    EDMAN, KAP
    ACTA PHYSIOLOGICA SCANDINAVICA, 1970, 79 (02): : 167 - &
  • [40] The position and morphology of honeycombs in normal skeletal muscle fibres of the healthy frog
    Voigt, T
    Dauber, W
    JOURNAL OF ELECTRON MICROSCOPY, 2004, 53 (06): : 671 - 675