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The positional isotope exchange technique as a probe of enzymatic mechanisms.

机译:位置同位素交换技术作为酶机制的探索。

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摘要

The positional isotope exchange (PIX) technique has been used to investigate the mechanisms of five enzymes: uridine diphosphoglucose pyrophosphorylase, galactose 1-phosphate uridyltransferase, sucrose synthetase, D-alanyl-D-alanine ligase and carbamyl phosphate synthetase. Applications of the technique have been expanded to include determination of kinetic mechanisms (ordered or random), partitioning ratios of binary and ternary enzyme complexes, and individual rate constants.;Combination of the PIX technique and traditional steady state kinetics allowed the determination of the lower limit of release of substrates from the binary and ternary enzyme complexes in the reaction catalyzed by uridine diphosphoglucose pyrophosphorylase. Because it was possible to follow a positional isotope exchange in both the forward and reverse direction, values for all of the individual rate constants were estimated.;A positional isotope exchange method was developed for the analysis of enzyme catalyzed reactions which have ping-pong kinetic mechanisms. The application involves the recyclization of the modified enzyme form by inclusion of the unlabeled product. The methodology was applied to galactose-1-phosphate uridyltransferase. The relative rate of product dissociation from the enzyme-product complex was determined.;The timing of intermediate formation was probed in the reactions catalyzed by sucrose synthetase and D-alanyl-D-alanine ligase. For both enzymes, the formation of an intermediate prior to the binding of the last substrate was investigated. The reaction of sucrose synthetase has been proposed to proceed by a two step mechanism in which the scissile bond of UDP-glucose is cleaved to form an intermediate which would then react with fructose. No positional isotope exchange in the absence of fructose could be detected for sucrose synthetase. It can thus be concluded that either the bond cleavage is not catalyzed in the absence of fructose or the phosphoryl group of the newly formed UDP is rotationally immobilized.;The investigation of the positional isotope exchange catalyzed by D-alanyl-D-alanine ligase verified the reaction follows an ordered kinetic mechanism as was determined in the steady state analysis. It was demonstrated that the formation of the D-alanine-phosphate intermediate must proceed by a two step mechanism involving either two chemical steps or a chemical and conformational step.;The energetics of the ATPase partial reaction catalyzed by site directed mutants of carbamyl phosphate synthetase have been determined. In the absence of added glutamine, the increased hydrolysis of ATP caused by site-directed mutational changes in the small subunit was due to greater access of solvent to the carboxy phosphate intermediate. The inclusion of glutamine further increased the hydrolysis by destabilization of the enzyme-carboxy phosphate complex.
机译:位置同位素交换(PIX)技术已用于研究五种酶的机制:尿苷二磷酸葡萄糖焦磷酸化酶,半乳糖1-磷酸尿嘧啶转移酶,蔗糖合成酶,D-丙氨酰-D-丙氨酸连接酶和氨基甲酰磷酸合成酶。该技术的应用已扩展到包括动力学机制(有序或随机)的确定,二元和三元酶复合物的分配比以及单个速率常数.PIX技术与传统稳态动力学的结合使得可以确定较低的尿苷二磷酸葡萄糖焦磷酸化酶催化的反应中底物从二元和三元酶复合物中释放的极限。由于可以在正反两个方向上进行位置同位素交换,因此估算了所有单个速率常数的值。;开发了一种位置同位素交换方法,用于分析具有乒乓动力学的酶催化反应机制。该申请涉及通过包含未标记产物而使修饰的酶形式再循环。该方法应用于半乳糖-1-磷酸尿嘧啶转移酶。确定了产物从酶-产物复合物中解离的相对速率。在蔗糖合成酶和D-丙氨酰-D-丙氨酸连接酶催化的反应中探明了中间体形成的时间。对于这两种酶,研究了最后一种底物结合之前中间体的形成。已经提出蔗糖合成酶的反应是通过两步机理进行的,其中UDP-葡萄糖的易裂键被裂解形成中间体,然后该中间体将与果糖反应。在没有果糖的情况下,未检测到蔗糖合成酶的位置同位素交换。因此可以得出结论,在没有果糖的情况下,键断裂不被催化,或者新形成的UDP的磷酸基被旋转固定。; D-丙氨酰-D-丙氨酸连接酶催化的位置同位素交换研究反应遵循稳态分析中确定的有序动力学机制。证明了D-丙氨酸磷酸酯中间体的形成必须通过涉及两个化学步骤或化学和构象步骤的两步机理进行;氨基甲酰磷酸合成酶的定点突变体催化ATPase部分反应的能量已经确定。在不添加谷氨酰胺的情况下,小亚基中定点突变引起的ATP水解增加是由于溶剂更容易接触到羧基磷酸酯中间体。谷氨酰胺的加入通过使酶-羧基磷酸盐复合物失稳而进一步增加了水解。

著录项

  • 作者

    Mullins, Leisha Sue Hester.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 1989
  • 页码 102 p.
  • 总页数 102
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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