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大纤维结构与镰状细胞血红蛋白结晶动力学

Macrofiber structure and the dynamics of sickle cell hemoglobin crystallization.

作者信息

Potel M J, Wellems T E, Vassar R J, Deer B, Josephs R

出版信息

J Mol Biol. 1984 Aug 25;177(4):819-39. doi: 10.1016/0022-2836(84)90050-0.

Abstract

Fibers of deoxyhemoglobin S undergo spontaneous crystallization by a mechanism involving a variety of intermediate structures. These intermediate structures, in common with the fiber and crystal, consist of Wishner-Love double strands of hemoglobin S molecules arranged in different configurations. The structure of one of the key intermediates linking the fiber and crystal, called a macrofiber, has been studied by a variety of analytical procedures. The results of the analysis indicate that the intermediates involved in the fiber to crystal transition have many common structural features. Fourier analysis of electron micrographs of macrofibers confirms that they are composed of Wishner-Love double strands of hemoglobin molecules. Electron micrographs of macrofiber cross-sections reveal that the arrangement of the double strands in macrofibers resembles that seen in micrographs of the a axis projection of the crystal. This orientation provides an end-on view of the double strands which appear as paired dumb-bell-like masses. The structural detail becomes progressively less distinct towards the edge of the particle due to twisting of the double strands about the particle axis. Serial sections of macrofibers confirm that these particles do indeed rotate about their axes. The twist of the particle is right handed and its average pitch is 10,000 A. The effect of rotation on the appearance of macrofiber cross-sections 300 to 400 A thick can be simulated by a 15 degrees rotation of an a axis crystal projection. The relative polarity of the double strands in macrofibers and crystals can be determined easily by direct inspection of the micrographs. In both macrofibers and crystals they are in an anti-parallel array. On the basis of these observations we conclude that crystallization of macrofibers involves untwisting and alignment of the double strands.

摘要

脱氧血红蛋白S的纤维通过涉及多种中间结构的机制进行自发结晶。这些中间结构与纤维和晶体一样,由以不同构型排列的血红蛋白S分子的Wishner-Love双链组成。一种连接纤维和晶体的关键中间体,称为大纤维,其结构已通过多种分析方法进行了研究。分析结果表明,参与纤维到晶体转变的中间体具有许多共同的结构特征。对大纤维电子显微镜照片的傅里叶分析证实,它们由血红蛋白分子的Wishner-Love双链组成。大纤维横截面的电子显微镜照片显示,大纤维中双链的排列类似于晶体a轴投影的显微镜照片中所见的排列。这种取向提供了双链的端视图,双链看起来像成对的哑铃状团块。由于双链围绕颗粒轴扭曲,结构细节在颗粒边缘处逐渐变得不那么清晰。大纤维的连续切片证实这些颗粒确实围绕其轴旋转。颗粒的扭曲是右旋的,其平均螺距为10,000埃。通过a轴晶体投影旋转15度可以模拟旋转对300至400埃厚的大纤维横截面外观的影响。通过直接检查显微镜照片可以轻松确定大纤维和晶体中双链的相对极性。在大纤维和晶体中,它们都呈反平行排列。基于这些观察结果,我们得出结论,大纤维的结晶涉及双链的解旋和排列。

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