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Developing bones are differentially affected by compromised skeletal muscle formation.

机译:发育中的骨骼受到受损的骨骼肌形成的差异影响。

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Mechanical forces are essential for normal adult bone function and repair, but the impact of prenatal muscle contractions on bone development remains to be explored in depth in mammalian model systems. In this study, we analyze skeletogenesis in two 'muscleless' mouse mutant models in which the formation of skeletal muscle development is disrupted; Myf5(nlacZlacZ):MyoD(-/-) and Pax3(Sp/Sp) (Splotch). Ossification centers were found to be differentially affected in the muscleless limbs, with significant decreases in bone formation in the scapula, humerus, ulna and femur, but not in the tibia. In the scapula and humerus, the morphologies of ossification centers were abnormal in muscleless limbs. Histology of the humerus revealed a decreased extent of the hypertrophic zone in mutant limbs but no change in the shape of this region. The elbow joint was also found to be clearly affected with a dramatic reduction in the joint line, while no abnormalities were evident in the knee. The humeral deltoid tuberosity was significantly reduced in size in the Myf5(nlacZlacZ):MyoD(-/-) mutants while a change in shape but not in size was found in the humeral tuberosities of the Pax3(Sp/Sp) mutants. We also examined skeletal development in a 'reduced muscle' model, the Myf5(nlacZ/+):MyoD(-/-) mutant, in which skeletal muscle forms but with reduced muscle mass. The reduced muscle phenotype appeared to have an intermediate effect on skeletal development, with reduced bone formation in the scapula and humerus compared to controls, but not in other rudiments. In summary, we have demonstrated that skeletal development is differentially affected by the lack of skeletal muscle, with certain rudiments and joints being more severely affected than others. These findings indicate that the response of skeletal progenitor cells to biophysical stimuli may depend upon their location in the embryonic limb, implying a complex interaction between mechanical forces and location-specific regulatory factors affecting bone and joint development.
机译:机械力对于正常的成人骨骼功能和修复至关重要,但是在哺乳动物模型系统中,尚需深入探讨产前肌肉收缩对骨骼发育的影响。在这项研究中,我们分析了两个“无肌肉”小鼠突变体模型中的骨骼生成,其中骨骼肌发育的形成受到了破坏。 Myf5(nlacZ / nlacZ):MyoD(-/-)和Pax3(Sp / Sp)(斑点)。发现骨化中心在无肌肉的四肢中受到不同的影响,肩with骨,肱骨,尺骨和股骨的骨形成显着减少,而胫骨则没有。在肩cap骨和肱骨中,无肌肉的四肢骨化中心的形态异常。肱骨的组织学显示突变体肢体中肥厚区的范围减小,但是该区域的形状没有改变。还发现肘关节明显受到关节线明显减少的影响,而膝盖没有明显异常。在Myf5(nlacZ / nlacZ):MyoD(-/-)突变体中,肱三角肌结节的大小显着减小,而在Pax3(Sp / Sp)突变体的肱结节中,形状有所改变,但大小没有变化。我们还检查了“减少肌肉”模型Myf5(nlacZ / +):MyoD(-/-)突变体中的骨骼发育,其中骨骼肌形成但肌肉质量降低。与对照相比,减少的肌肉表型似乎对骨骼发育有中间影响,在肩cap骨和肱骨中的骨形成减少,但在其他骨not中则没有。总而言之,我们已经证明了骨骼发育的缺乏受到骨骼肌缺乏的不同影响,某些雏形和关节受到的影响要比其他骨骼和关节严重得多。这些发现表明,骨骼祖细胞对生物物理刺激的反应可能取决于它们在胚胎肢体中的位置,这意味着机械力与影响骨骼和关节发育的特定位置调节因子之间存在复杂的相互作用。

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