矿化(土壤科学)
无定形磷酸钙
微束
生物矿化
钙
磷灰石
材料科学
骨矿物
同步加速器
无定形固体
化学
生物物理学
扫描电子显微镜
矿物学
结晶学
化学工程
光学
复合材料
生物
冶金
骨质疏松症
有机化学
内分泌学
工程类
物理
氮气
作者
Julia Mahamid,Barbara Aichmayer,Eyal Shimoni,Roy Ziblat,Chenghao Li,Stefan Siegel,Oskar Paris,Peter Fratzl,Steve Weiner,Lia Addadi
标识
DOI:10.1073/pnas.0914218107
摘要
The continuously forming fin bony rays of zebrafish represent a simple bone model system in which mineralization is temporally and spatially resolved. The mineralized collagen fibrils of the fin bones are identical in structure to those found in all known bone materials. We study the continuous mineralization process within the tissue by using synchrotron microbeam x-ray diffraction and small-angle scattering, combined with cryo-scanning electron microscopy. The former provides information on the mineral phase and the mineral particles size and shape, whereas the latter allows high-resolution imaging of native hydrated tissues. The integration of the two techniques demonstrates that new mineral is delivered and deposited as packages of amorphous calcium phosphate nanospheres, which transform into platelets of crystalline apatite within the collagen matrix.
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