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由嗜热脂肪芽孢杆菌的四聚体磷酸化甘油醛-3-磷酸脱氢酶生成的二聚体没有活性,但在NAD结合方面表现出协同性。

Dimers generated from tetrameric phosphorylating glyceraldehyde-3-phosphate dehydrogenase from Bacillus stearothermophilus are inactive but exhibit cooperativity in NAD binding.

作者信息

Roitel O, Sergienko E, Branlant G

机构信息

Maturation des ARN et Enzymologie Moléculaire, Faculté des Sciences, UMR 7567 CNRS-UHP, Vandoeuvre-les-Nancy, France.

出版信息

Biochemistry. 1999 Dec 7;38(49):16084-91. doi: 10.1021/bi9912802.

Abstract

Tetrameric phosphorylating glyceraldehyde-3-phosphate dehydrogenase (GAPDH) from Bacillus stearothermophilus has been described as a "dimer of dimers" with three nonequivalent interfaces, P-axis (between subunits O and P and between subunits Q and R), Q-axis (between subunits O and Q and between subunits P and R), and R-axis interface (between subunits O and R and between subunits P and Q). O-P dimers, the most stable and the easiest to generate, have been created by selective disruption of hydrogen bonds across the R- and Q-axis interfaces by site-directed mutagenesis. Asp-186 and Ser-48, and Glu-276 and Tyr-46, which are hydrogen bond partners across the R- and Q-axis interfaces, respectively, have been replaced with glycine residues. All mutated residues are highly conserved among GAPDHs from different species and are located in loops. Both double mutants D186G/E276G and Y46G/S48G were dimeric, while all single mutants remained tetrameric. As previously described [Clermont, S., Corbier, C., Mely, Y., Gerard, D., Wonacott, A., and Branlant, G. (1993) Biochemistry 32, 10178-10184], NAD binding to wild type GAPDH (wtGAPDH) was interpreted according to the induced-fit model and exhibited negative cooperativity. However, NAD binding to wtGAPDH can be adequately described in terms of two independent dimers with two interacting binding sites in each dimer. Single mutants D186G, E276G, and Y46G exhibited behavior in NAD binding similar to that of the wild type, while both dimeric mutants D186G/E276G and Y46G/S48G exhibited positive cooperativity in binding the coenzyme NAD. The fact that O-P dimer mutants retained cooperative behavior shows that (1) the P-axis interface is important in transmitting the information induced upon NAD binding inside the O-P dimer from one subunit to the other and (2) the S-loop of the R-axis-related subunit is not directly involved in cooperative binding of NAD in the O-P dimer. In both O-P dimer mutants, the absorption band of the binary enzyme-NAD complex had a highly decreased intensity compared to that of the wild type and, in addition, totally disappeared in the presence of G3P or 1,3-dPG. However, no enzymatic activity was detected, indicating that the formed ternary enzyme-NAD-G3P or -1, 3-dPG complex was not catalytically efficient. In the O-P dimers, the interaction with the S-loop of the R-axis-related subunit is disrupted, and therefore, the S-loop should be less structured. This resulted in increased accessibility of the active site to the solvent, particularly for the adenosine-binding site of NAD. Thus, together, this is likely to explain both the lowered affinity of the dimeric enzyme for NAD and the absence of activity.

摘要

嗜热脂肪芽孢杆菌的四聚体磷酸化甘油醛-3-磷酸脱氢酶(GAPDH)被描述为具有三个不等价界面的“二聚体的二聚体”,即P轴(在亚基O和P之间以及亚基Q和R之间)、Q轴(在亚基O和Q之间以及亚基P和R之间)和R轴界面(在亚基O和R之间以及亚基P和Q之间)。通过定点诱变选择性破坏R轴和Q轴界面上的氢键,产生了最稳定且最易生成的O-P二聚体。分别位于R轴和Q轴界面上作为氢键配对伙伴的Asp-186和Ser-48,以及Glu-276和Tyr-46,已被替换为甘氨酸残基。所有突变残基在来自不同物种的GAPDH中高度保守且位于环中。双突变体D186G/E276G和Y46G/S48G是二聚体,而所有单突变体仍为四聚体。如先前所述[克莱蒙特,S.,科比耶,C.,梅利,Y.,热拉尔,D.,沃纳科特,A.,和布兰兰特,G.(1993年)《生物化学》32卷,第10178 - 10184页],根据诱导契合模型解释了NAD与野生型GAPDH(wtGAPDH)的结合,并表现出负协同性。然而,NAD与wtGAPDH的结合可以用两个独立的二聚体来充分描述,每个二聚体中有两个相互作用的结合位点。单突变体D186G、E276G和Y46G在NAD结合方面表现出与野生型相似的行为,而二聚体突变体D186G/E276G和Y46G/S48G在结合辅酶NAD时表现出正协同性。O-P二聚体突变体保留协同行为这一事实表明:(1)P轴界面在将NAD结合在O-P二聚体内诱导的信息从一个亚基传递到另一个亚基方面很重要;(2)R轴相关亚基的S环不直接参与O-P二聚体中NAD的协同结合。在两个O-P二聚体突变体中,二元酶-NAD复合物的吸收带强度与野生型相比大幅降低,此外,在存在甘油醛-3-磷酸(G3P)或1,3-二磷酸甘油酸(1,3-dPG)时完全消失。然而,未检测到酶活性,表明形成的三元酶-NAD-G3P或-1,3-dPG复合物没有催化效率。在O-P二聚体中,与R轴相关亚基的S环的相互作用被破坏,因此,S环的结构应该更少。这导致活性位点对溶剂的可及性增加,特别是对于NAD的腺苷结合位点。因此,综合起来,这可能解释了二聚体酶对NAD的亲和力降低以及缺乏活性的原因。

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