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幼鼠营养不良性肌肉的分子和细胞收缩功能障碍

Molecular and cellular contractile dysfunction of dystrophic muscle from young mice.

作者信息

Lowe Dawn A, Williams Brian O, Thomas David D, Grange Robert W

机构信息

Department of Biochemistry, Molecular Biology Biophysics, University of Minnesota, 420 Delaware Street SE, MMC 388, Minneapolis, Minnesota 55455, USA.

出版信息

Muscle Nerve. 2006 Jul;34(1):92-100. doi: 10.1002/mus.20562.

Abstract

The purpose of this study was to determine whether contractile protein alterations are responsible for force deficits in young dystrophic muscle. Contractility of intact extensor digitorum longus muscles and permeabilized fibers from wild-type (wt), dystrophin-deficient (mdx), and dystrophin/utrophin-deficient (mdx:utrn-/-) mice aged 21 and 35 days was determined. Myosin structural dynamics were assessed by site-directed spin labeling and electron paramagnetic resonance spectroscopy. The principal finding was that force generation was depressed by approximately 20% in mdx muscles, but fiber Ca2+-activated force and myosin structure were not different from wt animals, suggesting that contractile proteins are not responsible for the force deficits in those muscles. For mdx:utrn-/- mice, muscle and fiber forces were approximately 40% lower than wt and the fraction of strong-binding myosin during contraction was reduced by 13%. These data indicate that contractile protein alterations, in addition to myosin dysfunction, cause force deficit in muscles from young mdx:utrn-/- mice. Elucidating the molecular mechanisms underlying muscle weakness at the onset of disease is important for designing treatment strategies.

摘要

本研究的目的是确定收缩蛋白的改变是否是导致幼年营养不良性肌肉力量不足的原因。测定了21天和35天大的野生型(wt)、抗肌萎缩蛋白缺陷型(mdx)和抗肌萎缩蛋白/抗肌萎缩蛋白聚糖缺陷型(mdx:utrn-/-)小鼠完整的趾长伸肌和通透化纤维的收缩能力。通过定点自旋标记和电子顺磁共振波谱评估肌球蛋白的结构动力学。主要发现是,mdx肌肉中的力量产生降低了约20%,但纤维的Ca2+激活力量和肌球蛋白结构与野生型动物无异,这表明收缩蛋白不是这些肌肉力量不足的原因。对于mdx:utrn-/-小鼠,肌肉和纤维力量比野生型低约40%,收缩过程中强结合肌球蛋白的比例降低了13%。这些数据表明,除了肌球蛋白功能障碍外,收缩蛋白的改变也导致幼年mdx:utrn-/-小鼠肌肉力量不足。阐明疾病发作时肌肉无力的分子机制对于设计治疗策略很重要。

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