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血红蛋白S双链稳定性分析

Analysis of the stability of hemoglobin S double strands.

作者信息

Mu X Q, Makowski L, Magdoff-Fairchild B

机构信息

St. Luke's-Roosevelt Hospital Center and Department of Medicine, College of Physicians and Surgeons of Columbia University, New York, New York 10025, USA.

出版信息

Biophys J. 1998 Jan;74(1):655-68. doi: 10.1016/S0006-3495(98)77825-7.

Abstract

The deoxyhemoglobin S (deoxy-HbS) double strand is the fundamental building block of both the crystals of deoxy-HbS and the physiologically relevant fibers present within sickle cells. To use the atomic-resolution detail of the hemoglobin-hemoglobin interaction known from the crystallography of HbS as a basis for understanding the interactions in the fibers, it is necessary to define precisely the relationship between the straight double strands in the crystal and the twisted, helical double strands in the fibers. The intermolecular contact conferring the stability of the double strand in both crystal and fiber is between the beta6 valine on one HbS molecule and residues near the EF corner of an adjacent molecule. Models for the helical double strands were constructed by a geometric transformation from crystal to fiber that preserves this critical interaction, minimizes distortion, and makes the transformation as smooth as possible. From these models, the energy of association was calculated over the range of all possible helical twists of the double strands and all possible distances of the double strands from the fiber axis. The calculated association energies reflect the fact that the axial interactions decrease as the distance between the double strand and the fiber axis increases, because of the increased length of the helical path taken by the double strand. The lateral interactions between HbS molecules in a double strand change relatively little between the crystal and possible helical double strands. If the twist of the fiber or the distance between the double strand and the fiber axis is too great, the lateral interaction is broken by intermolecular contacts in the region around the beta6 valine. Consequently, the geometry of the beta6 valine interaction and the residues surrounding it severely restricts the possible helical twist, radius, and handedness of helical aggregates constructed from the double strands. The limitations defined by this analysis establish the structural basis for the right-handed twist observed in HbS fibers and demonstrates that for a subunit twist of 8 degrees, the fiber diameter cannot be more than approximately 300 A, consistent with electron microscope observations. The energy of interaction among HbS molecules in a double strand is very slowly varying with helical pitch, explaining the variable pitch observed in HbS fibers. The analysis results in a model for the HbS double strand, for use in the analysis of interactions between double strands and for refinement of models of the HbS fibers against x-ray diffraction data.

摘要

脱氧血红蛋白S(deoxy-HbS)双链是脱氧-HbS晶体以及镰状细胞内生理相关纤维的基本结构单元。要将从HbS晶体学中得知的血红蛋白-血红蛋白相互作用的原子分辨率细节作为理解纤维中相互作用的基础,就必须精确界定晶体中直双链与纤维中扭曲的螺旋双链之间的关系。在晶体和纤维中赋予双链稳定性的分子间接触,发生在一个HbS分子上的β6缬氨酸与相邻分子EF角附近的残基之间。通过从晶体到纤维的几何变换构建螺旋双链模型,该变换保留了这种关键相互作用,使变形最小化,并尽可能使变换平滑。从这些模型中,计算了双链在所有可能的螺旋扭曲范围以及双链与纤维轴的所有可能距离下的结合能。计算出的结合能反映了这样一个事实,即由于双链所采取的螺旋路径长度增加,随着双链与纤维轴之间距离的增加,轴向相互作用会减弱。双链中HbS分子之间的横向相互作用在晶体和可能的螺旋双链之间变化相对较小。如果纤维的扭曲或双链与纤维轴之间的距离过大,β6缬氨酸周围区域的分子间接触会破坏横向相互作用。因此,β6缬氨酸相互作用及其周围残基的几何结构严重限制了由双链构建的螺旋聚集体可能的螺旋扭曲、半径和手性。该分析所定义的限制为HbS纤维中观察到的右手扭曲建立了结构基础,并表明对于8度的亚基扭曲,纤维直径不能超过约300埃,这与电子显微镜观察结果一致。双链中HbS分子之间的相互作用能随螺旋螺距变化非常缓慢,这解释了在HbS纤维中观察到的可变螺距。该分析得出了一个HbS双链模型,用于分析双链之间的相互作用以及根据X射线衍射数据完善HbS纤维模型。

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