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Hypophosphatemic rickets is associated with disruption of mineral orientation at the nanoscale in the flat scapula bones of rachitic mice with development

机译:低磷病与发育的棘突类小鼠的扁平肩cap骨中纳米级矿物质取向的破坏有关

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摘要

Metabolic bone disorders such as rickets are associated with altered in vivo muscular force distributions on the skeletal system. During development, these altered forces can potentially affect the spatial and temporal dynamics of mineralised tissue formation, but the exact mechanisms are not known. Here we have used a murine model of hypophosphatemic rickets (Hpr) to study the development of the mineralised nanostructure in the intramembranously ossifying scapulae (shoulder bone). Using position-resolved scanning small angle X-ray scattering (SAXS), we quantified the degree and direction of mineral nanocrystallite alignment over the width of the scapulae, from the load bearing lateral border (LB) regions to the intermediate infraspinous fossa (IF) tissue. These measurements revealed a significant (p < 0.05) increase in mineral nanocrystallite alignment in the LB when compared to the IF region, with increased tissue maturation in wild-type mice; this was absent in mice with rickets. The crystallites were more closely aligned to the macroscopic bone boundary in the LB when compared to the IF region in both wild type and Hpr mice, but the degree of alignment was reduced in Hpr mice. These findings are consistent with a correlation between the nanocrystallites within fibrils and in vivo muscular forces. Thus our results indicate a relevant mechanism for the observed increased macroscopic deformability in rickets, via a significant alteration in the mineral particle alignment, which is mediated by an altered spatial distribution of muscle forces.
机译:诸如bone病的代谢性骨疾病与骨骼系统上体内肌肉力分布的改变有关。在发育过程中,这些变化的力可能会影响矿化组织形成的时空动态,但确切的机制尚不清楚。在这里,我们使用了低磷酸盐病(Hpr)的小鼠模型来研究膜内骨化肩cap骨(肩骨)中矿化纳米结构的发展。使用位置分辨扫描小角度X射线散射(SAXS),我们在肩nano骨的整个宽度上(从承载侧向边界(LB)区域到中间的棘下窝(IF))量化了矿物纳米微晶排列的程度和方向组织。这些测量结果表明,与IF区相比,LB中的矿物纳米晶体排列显着(p <0.05)增加,而野生型小鼠的组织成熟度增加了;在患有病的小鼠中没有这种现象。与野生型和Hpr小鼠中的IF区相比,微晶与LB中的宏观骨边界更紧密对齐,但Hpr小鼠中的对齐程度降低。这些发现与原纤维内的纳米微晶和体内肌肉力之间的相关性是一致的。因此,我们的结果表明了一种观察到病的宏观可变形性增加的相关机制,这是由于矿物质颗粒排列的显着变化所致,而这种变化是由肌肉力的空间分布变化引起的。

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