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II 型胶原的原位 D 周期分子结构。

In situ D-periodic molecular structure of type II collagen.

机构信息

Center for Molecular Study of Condensed Soft Matter Centers (microCoSM), Pritzker Institute of Biomedical Science and Engineering, Chicago, Illinois 60616, USA.

出版信息

J Biol Chem. 2010 Mar 5;285(10):7087-96. doi: 10.1074/jbc.M109.060400. Epub 2010 Jan 6.

Abstract

Collagens are essential components of extracellular matrices in multicellular animals. Fibrillar type II collagen is the most prominent component of articular cartilage and other cartilage-like tissues such as notochord. Its in situ macromolecular and packing structures have not been fully characterized, but an understanding of these attributes may help reveal mechanisms of tissue assembly and degradation (as in osteo- and rheumatoid arthritis). In some tissues such as lamprey notochord, the collagen fibrillar organization is naturally crystalline and may be studied by x-ray diffraction. We used diffraction data from native and derivative notochord tissue samples to solve the axial, D-periodic structure of type II collagen via multiple isomorphous replacement. The electron density maps and heavy atom data revealed the conformation of the nonhelical telopeptides and the overall D-periodic structure of collagen type II in native tissues, data that were further supported by structure prediction and transmission electron microscopy. These results help to explain the observed differences in collagen type I and type II fibrillar architecture and indicate the collagen type II cross-link organization, which is crucial for fibrillogenesis. Transmission electron microscopy data show the close relationship between lamprey and mammalian collagen fibrils, even though the respective larger scale tissue architecture differs.

摘要

胶原蛋白是多细胞动物细胞外基质的重要组成部分。纤维型 II 型胶原蛋白是关节软骨和其他软骨样组织(如脊索)的最主要成分。其原位的大分子和包装结构尚未完全表征,但对这些属性的理解可能有助于揭示组织组装和降解的机制(如在骨关节炎和类风湿性关节炎中)。在某些组织(如七鳃鳗的脊索)中,胶原蛋白纤维组织是天然结晶的,可以通过 X 射线衍射进行研究。我们使用来自天然和衍生脊索组织样本的衍射数据,通过多同晶置换法解决了 II 型胶原蛋白的轴向、D 周期结构。电子密度图和重原子数据揭示了天然组织中非螺旋端肽的构象和 II 型胶原蛋白的整体 D 周期结构,这些数据进一步得到了结构预测和透射电子显微镜的支持。这些结果有助于解释观察到的 I 型和 II 型胶原纤维结构的差异,并表明了对纤维生成至关重要的胶原 II 型交联组织。透射电子显微镜数据表明,尽管各自的较大尺度组织结构不同,但七鳃鳗和哺乳动物的胶原纤维之间存在密切关系。

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