Huber E, Bäumert H G, Spatz-Kümbel G, Schubert D
Institut für Biophysik, J. W. Goethe-Universität, Frankfurt am Main, Germany.
Eur J Biochem. 1996 Dec 1;242(2):293-300. doi: 10.1111/j.1432-1033.1996.0293r.x.
The cytoplasmic domain of band 3, the predominant polypeptide of the erythrocyte membrane, represents a binding site for certain glycolytic enzymes. We have studied the association between human band 3 protein and aldolase, in order to clarify the role of the different band 3 oligomers as ligand binding sites. The experiments were performed on mixtures of solubilized band 3 and aldolase in solutions of a nonionic detergent, nonaethyleneglycol lauryl ether. The main technique applied was sedimentation equilibrium analysis in an analytical ultracentrifuge. In addition, nonequilibrium centrifugation techniques were used. To facilitate the evaluations, the aldolase was labelled with a dye. The following results were obtained. (1) With unmodified band 3, aldolase is bound exclusively or at least predominantly to the band 3 tetramer (but not to monomers or dimers). (2) The band 3 tetramer can bind up to four aldolase tetramers. (3) The band 3 tetramer/aldolase complex is unstable on the time scale of the techniques used. (4) Stable band 3 dimers (stabilized either covalently or noncovalently) can also associate with aldolase and can bind up to two aldolase tetramers. The results described, together with those reported previously, point at a prominent role of the band 3 tetramer in ligand binding.
带3是红细胞膜的主要多肽,其胞质结构域是某些糖酵解酶的结合位点。我们研究了人带3蛋白与醛缩酶之间的关联,以阐明不同带3寡聚体作为配体结合位点的作用。实验是在非离子洗涤剂九乙二醇月桂醚溶液中溶解的带3和醛缩酶的混合物上进行的。应用的主要技术是在分析超离心机中进行沉降平衡分析。此外,还使用了非平衡离心技术。为便于评估,用一种染料标记醛缩酶。得到了以下结果。(1)对于未修饰的带3,醛缩酶仅或至少主要与带3四聚体结合(而不与单体或二聚体结合)。(2)带3四聚体最多可结合四个醛缩酶四聚体。(3)在所用技术的时间尺度上,带3四聚体/醛缩酶复合物不稳定。(4)稳定的带3二聚体(通过共价或非共价方式稳定)也可与醛缩酶结合,且最多可结合两个醛缩酶四聚体。所述结果与先前报道的结果一起表明,带3四聚体在配体结合中起重要作用。