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Bone Strength: Current Concepts

机译:骨强度:当前概念

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摘要

Bones serve several mechanical functions, including acoustic amplification in the middle ear, shielding vital organs from trauma, and serving as levers for muscles to contract against. Bone is a multiphase material made up of a tough collagenous matrix intermingled with rigid mineral crystals. The mineral gives bone its stiffness. Without sufficient mineralization, bones will plastically deform under load. Collagen provides toughness to bone making it less brittle so that it better resists fracture. Bone adapts to mechanical stresses largely by changing its size and shape, which are major determinants of its resistance to fracture. Tissue is added in regions of high mechanical stress providing an efficient means for improving bone strength. Experiments have shown that small additions of bone mineral density (BMD) (5-8%) caused by mechanical loading can improve bone strength by over 60% and extend bone fatigue life by 100-fold. Consequently, it is clear that bone tissue possesses a mechanosensing apparatus that directs osteogenesis to where it is most needed for improving bone strength. The biological processes involved in bone mechanotransduction are poorly understood and further investigation of the molecular mechanisms involved might uncover drug targets for osteoporosis. Several pathways are emerging from current research, including membrane ion channels, ATP signaling, second messengers, such as prostaglandins and nitric oxide, insulin-like growth factors, and Wnt signaling.
机译:骨骼具有多种机械功能,包括中耳的声音放大,保护重要器官免受创伤,以及充当肌肉收缩的杠杆。骨是一种多相材料,由坚韧的胶原蛋白基质与刚性矿物晶体混合而成。矿物质赋予骨骼以刚度。没有足够的矿化作用,骨头将在负荷下发生塑性变形。胶原蛋白可为骨骼提供韧性,使其不那么脆,从而更好地抵抗骨折。骨骼可以通过改变大小和形状来适应机械应力,而骨骼的大小和形状是决定其抗骨折能力的主要因素。组织被添加到高机械应力的区域中,从而为提高骨强度提供了有效的手段。实验表明,由于机械负荷而少量添加的骨矿物质密度(BMD)(5-8%)可使骨骼强度提高60%以上,并使骨骼疲劳寿命延长100倍。因此,很明显,骨组织具有机械传感装置,该装置将成骨作用引导到最需要提高骨强度的位置。对骨骼机械转导的生物学过程了解甚少,对涉及的分子机制的进一步研究可能会发现骨质疏松症的药物靶标。当前研究中出现了几种途径,包括膜离子通道,ATP信号传导,第二信使(例如前列腺素和一氧化氮),胰岛素样生长因子和Wnt信号传导。

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