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R态AMP复合物揭示了果糖-1,6-二磷酸酶四级结构转变的初始步骤。

R-state AMP complex reveals initial steps of the quaternary transition of fructose-1,6-bisphosphatase.

作者信息

Iancu Cristina V, Mukund Susmith, Fromm Herbert J, Honzatko Richard B

机构信息

Department of Biochemistry, Biophysics, and Molecular Biology, Iowa State University, Ames, 50011, USA.

出版信息

J Biol Chem. 2005 May 20;280(20):19737-45. doi: 10.1074/jbc.M501011200. Epub 2005 Mar 14.

DOI:10.1074/jbc.M501011200
PMID:15767255
Abstract

AMP transforms fructose-1,6-bisphosphatase from its active R-state to its inactive T-state; however, the mechanism of that transformation is poorly understood. The mutation of Ala(54) to leucine destabilizes the T-state of fructose-1,6-bisphosphatase. The mutant enzyme retains wild-type levels of activity, but the concentration of AMP that causes 50% inhibition increases 50-fold. In the absence of AMP, the Leu(54) enzyme adopts an R-state conformation nearly identical to that of the wild-type enzyme. The mutant enzyme, however, grows in two crystal forms in the presence of saturating AMP. In one form, the AMP-bound tetramer is in a T-like conformation, whereas in the other form, the AMP-bound tetramer is in a R-like conformation. The latter reveals conformational changes in two helices due to the binding of AMP. Helix H1 moves toward the center of the tetramer and displaces Ile(10) from a hydrophobic pocket. The displacement of Ile(10) exposes a hydrophobic surface critical to interactions that stabilize the T-state. Helix H2 moves away from the center of the tetramer, breaking hydrogen bonds with a buried loop (residues 187-195) in an adjacent subunit. The same hydrogen bonds reform but only after the quaternary transition to the T-state. Proposed here is a model that accounts for the quaternary transition and cooperativity in the inhibition of catalysis by AMP.

摘要

AMP将果糖-1,6-二磷酸酶从其活性R态转变为无活性T态;然而,这种转变的机制却知之甚少。将丙氨酸(54)突变为亮氨酸会使果糖-1,6-二磷酸酶的T态不稳定。突变酶保留了野生型的活性水平,但导致50%抑制的AMP浓度增加了50倍。在没有AMP的情况下,Leu(54)酶采用的R态构象与野生型酶几乎相同。然而,在存在饱和AMP的情况下,突变酶以两种晶体形式生长。在一种形式中,结合AMP的四聚体处于类似T态的构象,而在另一种形式中,结合AMP的四聚体处于类似R态的构象。后者揭示了由于AMP结合导致的两个螺旋的构象变化。螺旋H1向四聚体中心移动,并将异亮氨酸(10)从一个疏水口袋中置换出来。异亮氨酸(10)的置换暴露了一个对稳定T态的相互作用至关重要的疏水表面。螺旋H2从四聚体中心移开,与相邻亚基中一个埋藏环(残基187-195)的氢键断裂。同样的氢键在向T态的四级转变后才重新形成。这里提出了一个模型,该模型解释了AMP对催化抑制中的四级转变和协同作用。

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