The Roslin Institute and Royal School of Veterinary Studies, University of Edinburgh, Edinburgh, UK.
Bone. 2011 May 1;48(5):1066-74. doi: 10.1016/j.bone.2011.01.010. Epub 2011 Jan 25.
Phosphatases are essential for the mineralization of the extracellular matrix within the skeleton. Their precise identities and functions however remain unclear. PHOSPHO1 is a phosphoethanolamine/phosphocholine phosphatase involved in the generation of inorganic phosphate for bone mineralization. It is highly expressed at sites of mineralization in bone and cartilage. The bones of Phospho1(-/-) mice are hypomineralized, bowed and present with spontaneous greenstick fractures at birth. In this study we show that PHOSPHO1 is essential for mechanically competent mineralization that is able to withstand habitual load. Long bones from Phospho1(-/-) mice did not fracture during 3-point bending but deformed plastically. With dynamic loading nanoindentation the elastic modulus and hardness of Phospho1(-/-) tibiae were significantly lower than wild-type tibia. Raman microscopy revealed significantly lower mineral:matrix ratios and lower carbonate substitutions in Phospho1(-/-) tibia. The altered dihydroxylysinonorleucine/hydroxylysinonorleucine and pyridinoline/deoxypyridinoline collagen crosslink ratios indicated possible changes in lysyl hydroxylase-1 activity and/or bone mineralization status. The bone formation and resorption markers, N-terminal propeptide and C-terminal telopeptide of Type I collagen, were both increased in Phospho1(-/-) mice and this we associated with increased bone remodeling during fracture repair or an attempt to remodel a mechanically competent bone capable of withstanding physiological load. In summary these data indicate that Phospho1(-/-) bones are hypomineralized and, consequently, are softer and more flexible. An inability to withstand physiological loading may explain the deformations noted. We hypothesize that this phenotype is due to the reduced availability of inorganic phosphate to form hydroxyapatite during mineralization, creating an undermineralized yet active bone.
磷酸酶对于骨骼细胞外基质的矿化至关重要。然而,它们的确切身份和功能仍不清楚。PHOSPHO1 是一种参与无机磷酸盐生成的磷酸乙醇胺/磷酸胆碱磷酸酶,用于骨骼矿化。它在骨骼和软骨矿化部位高度表达。Phospho1(-/-) 小鼠的骨骼矿化不足,弯曲且出生时即出现自发性青枝骨折。在这项研究中,我们表明 PHOSPHO1 对于能够承受习惯性负荷的机械性能良好的矿化是必需的。Phospho1(-/-) 小鼠的长骨在三点弯曲试验中不会断裂,但会发生塑性变形。通过动态加载纳米压痕法,Phospho1(-/-) 胫骨的弹性模量和硬度明显低于野生型胫骨。拉曼显微镜显示,Phospho1(-/-) 胫骨的矿物质/基质比值和碳酸盐取代明显较低。二羟赖氨酰正亮氨酸/羟赖氨酰正亮氨酸和吡啶啉/脱氧吡啶啉胶原交联比值的改变表明赖氨酰羟化酶-1 活性和/或骨矿化状态可能发生变化。Phospho1(-/-) 小鼠的 I 型胶原 N 端前肽和 C 端末端肽这两种骨形成和吸收标志物均增加,我们将其与骨折修复过程中或试图重塑能够承受生理负荷的机械性能良好的骨骼时的骨重建增加相关联。综上所述,这些数据表明 Phospho1(-/-) 骨骼矿化不足,因此质地较软且更具弹性。无法承受生理负荷可能是导致上述畸形的原因。我们假设这种表型是由于矿化过程中无机磷酸盐的可用性降低,导致形成羟磷灰石的能力不足,但骨骼仍保持活跃。