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本文引用的文献

1
Deletion of a genomic segment containing the cardiac troponin I gene knocks down expression of the slow troponin T gene and impairs fatigue tolerance of diaphragm muscle.删除包含心肌肌钙蛋白I基因的基因组片段会降低慢肌钙蛋白T基因的表达,并损害膈肌的疲劳耐受性。
J Biol Chem. 2009 Nov 13;284(46):31798-806. doi: 10.1074/jbc.M109.020826. Epub 2009 Sep 21.
2
G(s)alpha deficiency in skeletal muscle leads to reduced muscle mass, fiber-type switching, and glucose intolerance without insulin resistance or deficiency.骨骼肌中G(s)α缺乏会导致肌肉质量降低、纤维类型转换以及葡萄糖不耐受,且不存在胰岛素抵抗或缺乏。
Am J Physiol Cell Physiol. 2009 Apr;296(4):C930-40. doi: 10.1152/ajpcell.00443.2008. Epub 2009 Jan 21.
3
Skeletal muscle fatigue in old age: whose advantage?老年骨骼肌疲劳:谁的优势?
Exerc Sport Sci Rev. 2009 Jan;37(1):3-9. doi: 10.1097/JES.0b013e318190ea2e.
4
Removal of the N-terminal extension of cardiac troponin I as a functional compensation for impaired myocardial beta-adrenergic signaling.去除心肌肌钙蛋白I的N端延伸作为对受损心肌β-肾上腺素能信号传导的功能补偿。
J Biol Chem. 2008 Nov 28;283(48):33384-93. doi: 10.1074/jbc.M803302200. Epub 2008 Sep 24.
5
Muscular response and adaptation to diabetes mellitus.肌肉对糖尿病的反应与适应
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6
Role of beta-adrenoceptor signaling in skeletal muscle: implications for muscle wasting and disease.β-肾上腺素能受体信号在骨骼肌中的作用:对肌肉萎缩和疾病的影响。
Physiol Rev. 2008 Apr;88(2):729-67. doi: 10.1152/physrev.00028.2007.
7
Oxidative phenotype protects myofibers from pathological insults induced by chronic heart failure in mice.氧化表型可保护肌纤维免受小鼠慢性心力衰竭所致的病理损伤。
Am J Pathol. 2007 Feb;170(2):599-608. doi: 10.2353/ajpath.2007.060505.
8
Strength training improves muscle quality and insulin sensitivity in Hispanic older adults with type 2 diabetes.力量训练可改善患有2型糖尿病的西班牙裔老年人的肌肉质量和胰岛素敏感性。
Int J Med Sci. 2006 Dec 18;4(1):19-27. doi: 10.7150/ijms.4.19.
9
Differential regulation of myofilament protein isoforms underlying the contractility changes in skeletal muscle unloading.骨骼肌卸载过程中收缩性变化背后肌丝蛋白亚型的差异调节。
Am J Physiol Cell Physiol. 2007 Mar;292(3):C1192-203. doi: 10.1152/ajpcell.00462.2006. Epub 2006 Nov 15.
10
PGC1alpha expression is controlled in skeletal muscles by PPARbeta, whose ablation results in fiber-type switching, obesity, and type 2 diabetes.PGC1α的表达在骨骼肌中受PPARβ调控,PPARβ缺失会导致纤维类型转换、肥胖和2型糖尿病。
Cell Metab. 2006 Nov;4(5):407-14. doi: 10.1016/j.cmet.2006.10.003.

由于慢肌纤维的适应性增加,Gsα 缺陷和衰老小鼠骨骼肌的抗疲劳能力得到提高。

Improved fatigue resistance in Gsα-deficient and aging mouse skeletal muscles due to adaptive increases in slow fibers.

机构信息

Dept. of Physiology, Wayne State Univ. School of Medicine, Detroit, Michigan 48201, USA.

出版信息

J Appl Physiol (1985). 2011 Sep;111(3):834-43. doi: 10.1152/japplphysiol.00031.2011. Epub 2011 Jun 16.

DOI:10.1152/japplphysiol.00031.2011
PMID:21680879
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3174792/
Abstract

Genetically modified mice with deficiency of the G protein α-subunit (G(s)α) in skeletal muscle showed metabolic abnormality with reduced glucose tolerance, low muscle mass, and low contractile force, along with a fast-to-slow-fiber-type switch (Chen M, Feng HZ, Gupta D, Kelleher J, Dickerson KE, Wang J, Hunt D, Jou W, Gavrilova O, Jin JP, Weinstein LS. Am J Physiol Cell Physiol 296: C930-C940, 2009). Here we investigated a hypothesis that the switching to more slow fibers is an adaptive response with specific benefit. The results showed that, corresponding to the switch of myosin isoforms, the thin-filament regulatory proteins troponin T and troponin I both switched to their slow isoforms in the atrophic soleus muscle of 3-mo-old G(s)α-deficient mice. This fiber-type switch involving coordinated changes of both thick- and thin-myofilament proteins progressed in the G(s)α-deficient soleus muscles of 18- to 24-mo-old mice, as reflected by the expression of solely slow isoforms of myosin and troponin. Compared with age-matched controls, G(s)α-deficient soleus muscles with higher proportion of slow fibers exhibited slower contractile and relaxation kinetics and lower developed force, but significantly increased resistance to fatigue, followed by a better recovery. G(s)α-deficient soleus muscles of neonatal and 3-wk-old mice did not show the increase in slow fibers. Therefore, the fast-to-slow-fiber-type switch in G(s)α deficiency at older ages was likely an adaptive response. The benefit of higher fatigue resistance in adaption to metabolic deficiency and aging provides a mechanism to sustain skeletal muscle function in diabetic patients and elderly individuals.

摘要

骨骼肌 G 蛋白α亚基(G(s)α)缺失的基因敲除小鼠表现出代谢异常,包括葡萄糖耐量降低、肌肉质量减少、收缩力降低,以及快肌向慢肌纤维类型转变(Chen M, Feng HZ, Gupta D, Kelleher J, Dickerson KE, Wang J, Hunt D, Jou W, Gavrilova O, Jin JP, Weinstein LS. Am J Physiol Cell Physiol 296: C930-C940, 2009)。在这里,我们提出了一个假设,即向慢肌纤维的转变是一种具有特定益处的适应性反应。结果表明,与肌球蛋白同工型的转变相对应,在 3 月龄 G(s)α 缺失小鼠萎缩的比目鱼肌中,细丝调节蛋白肌钙蛋白 T 和肌钙蛋白 I 均转变为其慢同工型。这种涉及粗细肌丝蛋白协调变化的纤维类型转变,在 18-24 月龄 G(s)α 缺失比目鱼肌中进展,表现为肌球蛋白和肌钙蛋白仅表达慢同工型。与年龄匹配的对照组相比,G(s)α 缺失的比目鱼肌中慢纤维比例较高,表现为收缩和松弛动力学较慢,产生的力较低,但抗疲劳能力显著增强,随后恢复更好。新生和 3 周龄 G(s)α 缺失的比目鱼肌没有增加慢纤维。因此,老年 G(s)α 缺失时的快肌向慢肌纤维类型转变可能是一种适应性反应。在代谢缺陷和衰老适应中更高的抗疲劳能力的益处为维持糖尿病患者和老年人的骨骼肌功能提供了一种机制。