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Structural and functional roles of nebulin in skeletal muscle.

机译:神经蛋白在骨骼肌中的结构和功能作用。

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摘要

Skeletal muscles generate force through crossbridge interactions between actin thin filaments and myosin thick filaments within sarcomeres, which are, in turn, organized into a myofibrillar lattice in muscle fibers. Sarcomere assembly involves a complex and poorly understood process wherein protein constituents are synthesized and precisely localized to their target sites. One protein, nebulin, is believed to be a template or "ruler" that regulates thin filament length during actin polymerization. This dissertation seeks to understand the role of nebulin in vivo through a series of physiological experiments using a neonatal-lethal nebulin-knockout mouse model.;Because functional reference data from neonatal mouse skeletal muscle were not available in the scientific literature, a detailed analysis of the morphological, biochemical, and contractile properties of muscle was first performed in wild-type mice from postnatal days 1 to 28. Measurements showed that the mouse tibialis anterior muscle exhibits intrinsic enhancement of functional quality during postnatal growth independently of absolute size. Possible explanations for this phenomenon include a developmental transition to mature myosin heavy chain isoform expression and increased myofibrillar packing within fibers.;The functional role of nebulin was evaluated by comparing wild-type and nebulin-knockout mice at postnatal days 1 and 7. Nebulin had a dramatic impact on the active mechanical properties of skeletal muscle, with nebulin-deficient muscles exhibiting progressively inferior isometric stress generation and reduced functional integrity during cyclic contractions. The length-tension curve of nebulin-deficient muscle was also shifted in a manner consistent with reduced thin filament length. Short thin filaments alone could not explain the functional deficit of nebulin-deficient muscle, suggesting an additional role for nebulin in lateral force transmission.;Finally, to further probe nebulin-mediated force transmission in muscle, the phenotype of I6611X nebulin-mutant mice was examined. This mutant exhibits a truncation of the nebulin protein at the extreme C-terminus, thereby eliminating the Src homology 3 (SH3) domain that anchors nebulin in the Z-disk. Skeletal muscle from the I6611X nebulin-mutant mice exhibited normal isometric stress production but was more susceptible to eccentric contraction-induced injury. It is conceivable that the nebulin SH3 domain acts as a Z-disk stabilizer during muscle injury.
机译:骨骼肌通过肉瘤中肌动蛋白细丝和肌球蛋白粗丝之间的跨桥相互作用产生力,这些肌动蛋白细丝和肌球蛋白粗丝又被组织成肌肉纤维中的肌原纤维网状结构。肌节组装涉及一个复杂且鲜为人知的过程,其中蛋白质成分被合成并精确地定位于其靶位。据信一种蛋白,星蛋白,是在肌动蛋白聚合过程中调节细丝长度的模板或“规则”。本论文试图通过使用新生儿致死性星状蛋白敲除小鼠模型的一系列生理学实验来了解星状蛋白在体内的作用。由于科学文献中没有来自新生小鼠骨骼肌的功能参考数据,因此首先在出生后1至28天的野生型小鼠中进行肌肉的形态,生化和收缩特性测量。测量表明,小鼠胫前肌在出生后生长过程中表现出内在的功能质量增强,而与绝对大小无关。对此现象的可能解释包括发育转变为成熟的肌球蛋白重链同工型表达,以及纤维内肌纤维的堆积增加。;通过比较出生后第1天和第7天的野生型和敲除基因的小鼠评估了星云的功能。对骨骼肌主动机械性能的巨大影响,缺乏星云蛋白的肌肉在循环收缩过程中逐渐表现出较差的等轴测应力生成并降低了功能完整性。伴有细丝细丝长度减少的方式,也可以移动神经蛋白缺乏型肌肉的长度-张力曲线。仅细短的细丝不能解释神经蛋白缺乏型肌肉的功能缺陷,这暗示了神经蛋白在侧向力传递中的另外作用。最后,为了进一步探测神经蛋白介导的肌肉中的力传递,I6611X神经蛋白突变小鼠的表型为检查。该突变体在极端C末端显示出一个截断的星云蛋白蛋白,从而消除了将星云蛋白锚定在Z盘中的Src同源3(SH3)域。来自I6611X突变蛋白的小鼠的骨骼肌表现出正常的等轴应力产生,但更容易受到离心收缩引起的损伤的影响。可以想象,在肌肉损伤期间,星云蛋白SH3结构域充当Z盘稳定剂。

著录项

  • 作者

    Gokhin, David Samuel.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:58

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