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通过分子内低氧亲和力诱导中心腔交叉桥对血红蛋白S分子间接触区域(分子表面)的扰动。

Perturbation of the intermolecular contact regions (molecular surface) of hemoglobin S by intramolecular low-O2-affinity-inducing central cavity cross-bridges.

作者信息

Malavalli A, Manjula B N, Friedman J M, Acharya A S

机构信息

Department of Medicine, Albert Einstein College of Medicine, Bronx, New York 10461, USA.

出版信息

J Protein Chem. 2000 May;19(4):255-67. doi: 10.1023/a:1007039111556.

Abstract

The general assumption among researchers on hemoglobin is that the intramolecular central cavity cross-bridging of Hb does not result in any generalized perturbations at the protein surface. A corollary of this is that central cavity cross-bridges are unlikely to influence the polymerization of deoxy HbS, since polymerization is a protein surface phenomenon involving the participation of multiple protein surface amino acid residues. In an attempt to evaluate this experimentally, we have introduced two low-O2-affinity-inducing central cavity cross-bridges into HbS, beta(beta)-sebacyl [between the two Lys-82(beta) residues] and alpha(alpha)-fumaryl [between the two Lys-99(alpha) residues], and investigated their influence on the polymerization of the deoxy protein. The O2 affinities of the cross-bridged HbS exhibited sensitivity toward the buffer ions and pH in a cross-link-specific fashion. The modulation of the O2 affinity of these cross-bridged HbS in the presence of allosteric effectors, DPG and L-35, is also very distinct, reflecting the differences in the conformational features these two cross-bridges induce within the central cavity at the respective effector-binding domains. In addition, the alpha(alpha)-fumaryl cross bridge inhibited the polymerization, reflecting the perturbation of the microenvironment of one or more intermolecular contact residues, protein surface residues, as a consequence of the central cavity cross-bridge. On the other hand, the beta(beta)-sebacyl cross-bridge exerted a slight potentiating effect on the polymerization of HbS. This reflects the fact that the perturbations at the protein surface are limited and favor polymerization. The results presented demonstrate that the structural changes induced by the central cavity cross-bridges are very specific and not simply restricted to the sites of modification, but are propagated to distant sites/domains, both within and outside the central cavity. It is conceivable that other surface regions that are not involved in the polymerization could also experience similar structural/conformational consequences. These results should be taken into consideration in designing intramolecularly cross-bridged asymmetric hybrid HbS for mapping the contribution of the intermolecular contact residues in the cis and trans dimers of deoxy HbS during polymerization.

摘要

血红蛋白研究人员的一般假设是,血红蛋白分子内中央腔的交叉桥接不会在蛋白质表面产生任何普遍的扰动。由此得出的一个推论是,中央腔交叉桥不太可能影响脱氧血红蛋白S(HbS)的聚合,因为聚合是一种蛋白质表面现象,涉及多个蛋白质表面氨基酸残基的参与。为了通过实验评估这一点,我们在HbS中引入了两个诱导低氧亲和力的中央腔交叉桥,β(β)-癸二酰基(在两个赖氨酸-82(β)残基之间)和α(α)-富马酰基(在两个赖氨酸-99(α)残基之间),并研究了它们对脱氧蛋白质聚合的影响。交叉桥接的HbS的氧亲和力以交联特异性方式对缓冲离子和pH表现出敏感性。在变构效应剂二磷酸甘油酸(DPG)和L-35存在下,这些交叉桥接的HbS的氧亲和力调节也非常明显,反映了这两个交叉桥在各自效应剂结合域内在中央腔内诱导的构象特征差异。此外,α(α)-富马酰基交叉桥抑制了聚合,这反映了由于中央腔交叉桥导致的一个或多个分子间接触残基(蛋白质表面残基)微环境的扰动。另一方面,β(β)-癸二酰基交叉桥对HbS的聚合有轻微的促进作用。这反映了蛋白质表面的扰动是有限的且有利于聚合这一事实。所呈现的结果表明,中央腔交叉桥诱导的结构变化非常特异,不仅限于修饰位点,还会传播到中央腔内和腔外的远处位点/结构域。可以想象,其他不参与聚合的表面区域也可能经历类似的结构/构象变化。在设计分子内交叉桥接的不对称杂合HbS以确定脱氧HbS在聚合过程中顺式和反式二聚体中分子间接触残基的贡献时,应考虑这些结果。

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