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在对非洲爪蟾骨骼肌单纤维进行长时间强直刺激期间,松弛减慢及胞内钙离子浓度[Ca2+]i变化情况

Slowing of relaxation and [Ca2+]i during prolonged tetanic stimulation of single fibres from Xenopus skeletal muscle.

作者信息

Westerblad H, Allen D G

机构信息

Department of Physiology, University of Sydney, NSW, Australia.

出版信息

J Physiol. 1996 May 1;492 ( Pt 3)(Pt 3):723-36. doi: 10.1113/jphysiol.1996.sp021341.

Abstract
  1. Parvalbumin (PA) has been proposed to take up Ca2+ and enhance skeletal muscle relaxation in brief contractions; as the duration of the contraction is increased, PA will become saturated with Ca2+ and no longer contribute to relaxation which therefore will be slowed. The rate of Ca2+ loading of PA is determined by the Mg2+ off rate (about 4 s-1 at 22 degrees C). In the present study we produced prolonged tetani in intact, single fibres of Xenopus frogs while measuring force and the free myoplasmic [Ca2+] ([Ca2+]i) with indo-1. 2. Mean rate constants of slowing of force relaxation with increasing tetanus duration ranged between 3.2 and 4.8 s-1, thus, similar to the Mg2+ off rate of PA. 3. The amplitude of the tail of [Ca2+]i after tetani increased with tetanus duration. This increase developed with a rate constant similar to the Mg2+ off rate of PA 4. Steady-state force-[Ca2+]i curves were produced from tetani of various frequencies and tetani produced when force was depressed after fatiguing stimulation. These curves were used to convert [Ca2+]i records into Ca(2+)-derived force. Relaxation of Ca(2+)-derived force was slowed following a time course similar to that of real force. The lag between Ca(2+)-derived and real force during relaxation was not affected by tetanus duration. 5. Tails of elevated [Ca2+]i after tetani were used to analyse the function of the SR Ca2+ pumps. This analysis showed a marked decline in the rate of Ca2+ uptake with prolonged tetani. 6. In conclusion, in Xenopus fibres the slowing of relaxation with increasing tetanus duration can be explained by altered Ca2+ handling due to PA Ca2+ loading and impaired SR Ca2+ uptake. This contrasts to our previous results in mouse fibres and the difference can be explained by a markedly lower rate of SR Ca2+ uptake resulting in higher tetanic [Ca2+]i in Xenopus fibres.
摘要
  1. 有人提出,小清蛋白(PA)在短暂收缩中摄取Ca2+并增强骨骼肌松弛;随着收缩持续时间增加,PA会被Ca2+饱和,不再有助于松弛,因此松弛会减慢。PA的Ca2+加载速率由Mg2+解离速率决定(22℃时约为4 s-1)。在本研究中,我们在完整的非洲爪蟾单纤维中产生持续的强直收缩,同时用indo-1测量力和游离肌浆[Ca2+]([Ca2+]i)。2. 随着强直收缩持续时间增加,力松弛减慢的平均速率常数在3.2至4.8 s-1之间,因此,与PA的Mg2+解离速率相似。3. 强直收缩后[Ca2+]i尾峰的幅度随强直收缩持续时间增加。这种增加的速率常数与PA的Mg2+解离速率相似。4. 从不同频率的强直收缩以及疲劳刺激后力降低时产生的强直收缩中得出稳态力-[Ca2+]i曲线。这些曲线用于将[Ca2+]i记录转换为Ca(2+)衍生力。Ca(2+)衍生力的松弛以与实际力相似的时间进程减慢。松弛过程中Ca(2+)衍生力与实际力之间的延迟不受强直收缩持续时间影响。5. 强直收缩后升高的[Ca2+]i尾峰用于分析肌浆网Ca2+泵的功能。该分析表明,随着强直收缩持续时间延长,Ca2+摄取速率显著下降。6. 总之,在非洲爪蟾纤维中,随着强直收缩持续时间增加,松弛减慢可由PA Ca2+加载导致的Ca2+处理改变和肌浆网Ca2+摄取受损来解释。这与我们之前在小鼠纤维中的结果形成对比,这种差异可由肌浆网Ca2+摄取速率明显较低导致非洲爪蟾纤维中强直收缩[Ca2+]i较高来解释。

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