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灌注大鼠后肢收缩肌肉中的蛋白质合成与能量状态

Protein synthesis versus energy state in contracting muscles of perfused rat hindlimb.

作者信息

Bylund-Fellenius A C, Ojamaa K M, Flaim K E, Li J B, Wassner S J, Jefferson L S

出版信息

Am J Physiol. 1984 Apr;246(4 Pt 1):E297-305. doi: 10.1152/ajpendo.1984.246.4.E297.

Abstract

The goal of these studies was to evaluate acute changes in protein metabolism in skeletal muscle in response to contractile activity. Rates of protein synthesis were measured by following L-[U-14C]phenylalanine incorporation into protein in muscles of the perfused rat hindlimb at rest, during 10 min of maximal isometric muscle contractions, and during 10 min of recovery. Synthesis measurements were carried out under conditions that ensured that the specific radioactivity of the tRNA-bound precursor amino acid was equal to that of extracellular phenylalanine. Protein degradation was estimated by measuring the release of Nt-methylhistidine. Rates of synthesis were markedly inhibited in response to muscle contractions in tibialis anterior, gastrocnemius, and plantaris but were unaffected in soleus. Rates of synthesis returned toward those observed in the resting condition during the recovery period. Rates of degradation were also markedly inhibited in response to muscle contractions. Decreased rates of synthesis correlated with reduced tissue contents of ATP and creatine phosphate, a reduced ATP/ADP, and an elevated tissue content of lactate. The results demonstrate that isometric contractions in muscles consisting of a high proportion of fast glycolytic fibers result in a marked depression in rates of protein synthesis that may be due to an altered energy state.

摘要

这些研究的目的是评估骨骼肌蛋白质代谢对收缩活动的急性变化。通过追踪L-[U-¹⁴C]苯丙氨酸掺入灌注大鼠后肢肌肉蛋白质中的情况,在静息状态、最大等长肌肉收缩10分钟期间以及恢复10分钟期间测量蛋白质合成速率。合成测量是在确保与tRNA结合的前体氨基酸的比放射性等于细胞外苯丙氨酸比

放射性的条件下进行的。通过测量Nt-甲基组氨酸的释放来估计

蛋白质降解。

在胫骨前肌、腓肠肌和跖肌中,合成速率因肌肉收缩而明显受到抑制,但比目鱼肌不受影响。在恢复期间,合成速率恢复到静息状态下观察

水平。降解速率也因肌肉收缩而明显受到抑制。合成速率降低与ATP和磷酸肌酸的组织含量降低、ATP/ADP降低以及乳酸组织含量升高有关。结果

表明,由高比例快速

糖酵解纤维组成的肌肉中的等长收缩会导致蛋白质合成速率显著

下降,这可能是由于能量状态改变所致

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