Wilder R T, Venkataramu S D, Dalton L R, Birktoft J J, Trommer W E, Park J H
Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, TN 37232.
Biochim Biophys Acta. 1989 Jul 27;997(1-2):65-77. doi: 10.1016/0167-4838(89)90136-2.
Perdeuterated spin label (DSL) analogs of NAD+, with the spin label attached at either the C8 or N6 position of the adenine ring, have been employed in an EPR investigation of models for negative cooperativity binding to tetrameric glyceraldehyde-3-phosphate dehydrogenase and conformational changes of the DSL-NAD+-enzyme complex during the catalytic reaction. C8-DSL-NAD+ and N6-DSL-NAD+ showed 80 and 45% of the activity of the native NAD+, respectively. Therefore, these spin-labeled compounds are very efficacious for investigations of the motional dynamics and catalytic mechanism of this dehydrogenase. Perdeuterated spin labels enhanced spectral sensitivity and resolution thereby enabling the simultaneous detection of spin-labeled NAD+ in three conditions: (1) DSL-NAD+ freely tumbling in the presence of, but not bound to, glyceraldehyde-3-phosphate dehydrogenase, (2) DSL-NAD+ tightly bound to enzyme subunits remote (58 A) from other NAD+ binding sites, and (3) DSL-NAD+ bound to adjacent monomers and exhibiting electron dipolar interactions (8-9 A or 12-13 A, depending on the analog). Determinations of relative amounts of DSL-NAD+ in these three environments and measurements of the binding constants, K1-K4, permitted characterization of the mathematical model describing the negative cooperativity in the binding of four NAD+ to glyceraldehyde-3-phosphate dehydrogenase. For enzyme crystallized from rabbit muscle, EPR results were found to be consistent with the ligand-induced sequential model and inconsistent with the pre-existing asymmetry models. The electron dipolar interaction observed between spin labels bound to two adjacent glyceraldehyde-3-phosphate dehydrogenase monomers (8-9 or 12-13 A) related by the R-axis provided a sensitive probe of conformational changes of the enzyme-DSL-NAD+ complex. When glyceraldehyde-3-phosphate was covalently bound to the active site cysteine-149, an increase in electron dipolar interaction was observed. This increase was consistent with a closer approximation of spin labels produced by steric interactions between the phosphoglyceryl residue and DSL-NAD+. Coenzyme reduction (DSL-NADH) or inactivation of the dehydrogenase by carboxymethylation of the active site cysteine-149 did not produce changes in the dipolar interactions or spatial separation of the spin labels attached to the adenine moiety of the NAD+. However, coenzyme reduction or carboxymethylation did alter the stoichiometry of binding and caused the release of approximately one loosely bound DSL-NAD+ from the enzyme. These findings suggest that ionic charge interactions are important in coenzyme binding at the active site.
NAD⁺的全氘代自旋标记(DSL)类似物,其自旋标记连接在腺嘌呤环的C8或N6位置,已被用于电子顺磁共振(EPR)研究,以探讨与四聚体甘油醛-3-磷酸脱氢酶负协同结合的模型,以及催化反应过程中DSL-NAD⁺-酶复合物的构象变化。C8-DSL-NAD⁺和N6-DSL-NAD⁺的活性分别为天然NAD⁺的80%和45%。因此,这些自旋标记化合物对于研究该脱氢酶的运动动力学和催化机制非常有效。全氘代自旋标记提高了光谱灵敏度和分辨率,从而能够在三种条件下同时检测自旋标记的NAD⁺:(1)DSL-NAD⁺在存在甘油醛-3-磷酸脱氢酶但未与之结合的情况下自由翻滚;(2)DSL-NAD⁺紧密结合在远离其他NAD⁺结合位点(58 Å)的酶亚基上;(3)DSL-NAD⁺结合到相邻单体并表现出电子偶极相互作用(8 - 9 Å或12 - 13 Å,取决于类似物)。测定这三种环境中DSL-NAD⁺的相对含量并测量结合常数K1 - K4,有助于表征描述四个NAD⁺与甘油醛-3-磷酸脱氢酶结合时负协同作用的数学模型。对于从兔肌肉结晶的酶,EPR结果与配体诱导的顺序模型一致,与预先存在的不对称模型不一致。观察到通过R轴相关的两个相邻甘油醛-3-磷酸脱氢酶单体上结合的自旋标记之间的电子偶极相互作用,为酶-DSL-NAD⁺复合物的构象变化提供了一个敏感的探针。当甘油醛-3-磷酸共价结合到活性位点半胱氨酸-149时,观察到电子偶极相互作用增加。这种增加与磷酸甘油酰残基和DSL-NAD⁺之间的空间相互作用导致的自旋标记更紧密接近一致。辅酶还原(DSL-NADH)或通过活性位点半胱氨酸-149的羧甲基化使脱氢酶失活,不会导致与NAD⁺腺嘌呤部分相连的自旋标记的偶极相互作用或空间分离发生变化。然而,辅酶还原或羧甲基化确实改变了结合的化学计量,并导致大约一个松散结合的DSL-NAD⁺从酶中释放。这些发现表明离子电荷相互作用在活性位点的辅酶结合中很重要。