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肌酸耗竭引发大鼠肋膈膜的结构、生化和生理适应性变化。

Creatine depletion elicits structural, biochemical, and physiological adaptations in rat costal diaphragm.

作者信息

Levine S, Tikunov B, Henson D, LaManca J, Sweeney H L

机构信息

Pulmonary and Critical Care Section, Veterans Affairs Medical Center, Philadelphia, Pennsylvania, USA.

出版信息

Am J Physiol. 1996 Nov;271(5 Pt 1):C1480-6. doi: 10.1152/ajpcell.1996.271.5.C1480.

Abstract

To elucidate adaptations elicited by creatine (Cr) depletion in the costal diaphragm (Dia), 16 12-wk-old male Fisher 344 rats had 2% beta-guanidinopropionic acid (beta-GPA), a competitive inhibitor of Cr transport into muscle, added to their food; a control group (Con) of 16 rats ate normal rat chow. After 18 wk, beta-GPA and Con Dia did not differ histochemically with respect to fiber-type distribution; however, the cross-sectional area of type II(b + x) fibers was 33% less in beta-GPA than Con Dia. Biochemically, the proportion of myosin heavy chain IIb in beta-GPA Dia was decreased 42% from Con Dia, whereas the proportions of myosin heavy chains I and IIa were increased. Physiologically, both peak twitch tension and tetanic tension in beta-GPA Dia were decreased 40% from Con. To assess fatigability, we used the protocol of Kelsen and Nochomovitz (J. Appl. Physiol. 53; 440-447, 1982) for 2-6 min duration; the percentage of initial force exhibited by beta-GPA Dia was approximately twice that of Con Dia. We conclude that these structural, biochemical, and physiological adaptations elicited by Cr depletion can all be explained by selective atrophy of IIb muscle fibers in the Dia.

摘要

为了阐明肋膈膜(Dia)中肌酸(Cr)耗竭所引发的适应性变化,将2%的β-胍基丙酸(β-GPA,一种Cr向肌肉转运的竞争性抑制剂)添加到16只12周龄雄性Fisher 344大鼠的食物中;16只大鼠组成的对照组(Con)喂食正常大鼠饲料。18周后,β-GPA组和Con组的Dia在纤维类型分布的组织化学方面没有差异;然而,β-GPA组II(b + x)型纤维的横截面积比Con组小33%。生化方面,β-GPA组Dia中肌球蛋白重链IIb的比例比Con组降低了42%,而肌球蛋白重链I和IIa的比例增加。生理方面,β-GPA组Dia的单收缩峰值张力和强直张力均比Con组降低了40%。为了评估疲劳性,我们采用了Kelsen和Nochomovitz(《应用生理学杂志》53;440 - 447,1982)的方案,持续2 - 6分钟;β-GPA组Dia所表现出的初始力百分比约为Con组的两倍。我们得出结论,Cr耗竭所引发的这些结构、生化和生理适应性变化都可以通过Dia中IIb型肌纤维的选择性萎缩来解释。

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