Bluemke D A, Carragher B, Potel M J, Josephs R
Department of Molecular Genetics and Cell Biology, University of Chicago, IL 60637.
J Mol Biol. 1988 Jan 20;199(2):333-48. doi: 10.1016/0022-2836(88)90317-8.
Sickle cell hemoglobin macrofibers are an important intermediate in the low pH crystallization pathway of deoxygenated hemoglobin S that link the fiber to the crystal. Macrofibers are a class of helical particles differing primarily in their diameters but are related by a common packing of their constituent subunits. We have performed three-dimensional reconstructions of three types of macrofibers. These reconstructions show that macrofibers are composed of rows of Wishner-Love double strands in an arrangement similar to that in the crystal. We have measured the orientation and co-ordinates of double strands in macrofibers using cross-correlation techniques. In this approach, the electron density projections of double strands calculated from the known high-resolution crystal structure are compared with regions along the length of the particles in which the distinct pattern of double strands in c-axis projection may be observed. Contrary to assertions by Makinen & Sigountos (1984), our results unambigously demonstrate that adjacent rows of double strands in macrofibers are oriented in an antiparallel manner, as in the Wishner-Love crystal. Adjacent rows of antiparallel double strands are displaced along the helical axis relative to their co-ordinates in the crystal. Electron density models of macrofibers based on the crystallographic structure of the sickle hemoglobin double strand are in good agreement with the projections of macrofibers observed in electron micrographs. We have studied the structure of a closely related crystallization intermediate, the sickle hemoglobin paracrystal. The arrangement of double strands in paracrystals is similar to that in Wishner-Love crystals, except that they are displaced along the a-axis of the crystal. Measurements of the double strand co-ordinates reveal that the distribution of strand positions is bimodal. These results further establish the close structural relationship between macrofibers and paracrystals as intermediates in the crystallization of deoxygenated sickle hemoglobin.
镰状细胞血红蛋白大纤维是去氧血红蛋白S低pH值结晶途径中的重要中间体,它将纤维与晶体连接起来。大纤维是一类螺旋状颗粒,主要区别在于其直径,但它们的组成亚基具有共同的堆积方式。我们对三种类型的大纤维进行了三维重建。这些重建结果表明,大纤维由Wishner-Love双链排组成,其排列方式与晶体中的相似。我们使用互相关技术测量了大纤维中双链的取向和坐标。在这种方法中,将根据已知的高分辨率晶体结构计算出的双链电子密度投影与颗粒长度方向上可观察到c轴投影中双链独特图案的区域进行比较。与Makinen和Sigountos(1984年)的断言相反,我们的结果明确表明,大纤维中相邻的双链排以反平行方式取向,就像在Wishner-Love晶体中一样。相邻的反平行双链排在螺旋轴上相对于它们在晶体中的坐标发生了位移。基于镰状血红蛋白双链晶体结构的大纤维电子密度模型与电子显微镜中观察到的大纤维投影非常吻合。我们研究了一种密切相关的结晶中间体——镰状血红蛋白副晶体的结构。副晶体中双链的排列与Wishner-Love晶体中的相似,只是它们沿晶体的a轴发生了位移。双链坐标的测量结果表明,链位置的分布是双峰的。这些结果进一步确立了大纤维和副晶体作为去氧镰状血红蛋白结晶中间体之间紧密的结构关系。