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首页> 外文期刊>Journal of Biomechanics >Structural role of osteocalcin and osteopontin in energy dissipation in bone
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Structural role of osteocalcin and osteopontin in energy dissipation in bone

机译:骨钙素和骨桥蛋白在骨中耗能中的结构作用

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摘要

Non-collagenous proteins are a vital component of bone matrix. Amongst them, osteocalcin (OC) and osteopontin (OPN) hold special significance due to their intimate interaction with the mineral and collagenous matrix in bone. Both proteins have been associated with microdamage and fracture, but their structural role in energy dissipation is unclear. This study used bone tissue from genetic deficient mice lacking OC and/or OPN and subjected them to a series of creep-fatigue-creep tests. To this end, whole tibiae were loaded in four-point bending to 70% stiffness loss which captured the three characteristic phases of fatigue associated with initiation, propagation, and coalescence of microdamage. Fatigue loading preceded and followed creep tests to determine creep and dampening parameters. Microdamage in the form of linear microcracks and diffuse damage were analyzed by histology. It was shown that OC and OPN were ‘activated’ following stiffness loss associated with fatigue damage where they facilitated creep and dampening parameters (i.e. increased energy dissipation). More specifically, post-fatigue creep rate and dampening were significantly greater in wild-types (WTs) than genetic deficient mice (p?
机译:非胶原蛋白是骨基质的重要组分。其中,由于与骨中的矿物质和胶原基质的亲密相互作用,Osteocalcin(OC)和Osteopontin(OPN)具有特殊意义。两种蛋白质都与微米血管和骨折有关,但它们在能量耗散中的结构作用尚不清楚。本研究使用缺乏OC和/或OPN的遗传缺陷小鼠的骨组织,并使它们进行一系列蠕变 - 疲劳蠕变试验。为此,整个胫骨被装入四点弯曲至70%刚度损失,该衰减率捕获了与微米血管发育,传播和聚结的疲劳阶段的三个特征阶段。前后疲劳载入并沿着蠕变试验来确定蠕变和阻尼参数。通过组织学分析了线性微裂纹和漫反射损伤形式的微摩雨。结果表明,在与疲劳损伤相关的刚度损失之后,OC和OPN是“激活”,其中它们促进了蠕变和抑制参数(即增加的能量耗散)。更具体地,在野生型(WTS)中疲劳后蠕变率和湿度明显大于遗传缺陷小鼠(P?<β05)。与遗传缺陷组相比,Microdamage分析的基础分析表明WTS中蠕变相关弥漫性损伤形成的显着增加(P?<β0.05)。基于这些发现,我们提出了在局部产量事件期间,OC和OPN依赖于其带电侧链和氢键的离子相互作用以溶解骨中的能量。

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