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Synthesis and use of bifunctional chloromethylalkanedione derivatives of variable chain length for cross-linking thiol groups in oligomeric proteins. Specific cross-linking in glyceraldehyde 3-phosphate dehydrogenase

机译:可变链长的双官能氯甲基链烷二酮衍生物的合成和用于交联寡聚蛋白中的巯基的用途。甘油醛3-磷酸脱氢酶中的特定交联

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摘要

Bischloromethylpentanedione, bischloromethylhexanedione, bischloromethyloctanedione and bischloromethyldecanedione were synthesized from their corresponding dicarboxylic acids via the bis-acyl chloride and the bisdiazomethylketone derivatives. These compounds proved to be highly specific cross-linking reagents for rabbit skeletal-muscle glyceraldehyde 3-phosphate dehydrogenase. Incubation of the enzyme with cross-linking reagents resulted in both a time- and concentration-dependent formation of covalently linked oligomeric structures. The major cross-linked product detected by sodium dodecyl sulphate/polyacrylamide-gel electrophoresis was the dimer (mol. wt. 72000). Sepharose 6B chromatography of the cross-linked enzyme showed that it still existed as the tetramer. Cross-linking was dependent on the native structure of the enzyme, since it was abolished on denaturation of the enzyme. The actual covalently linked product depends on the conditions of modification and the chain length of the reagent. The maximum yield of dimer (70–80%) was obtained with bischloromethylhexanedione, and the yield decreased with either shorter- or longer-chain compounds. The calculated distance between the two reactive points in bischloromethylhexanedione is 1.21–1.45nm. Bischloromethylhexanedione modified at least two thiol groups per monomer. Modification of the active-site thiol, cysteine-149, was not essential for cross-linking, since glyceraldehyde 3-phosphate dehydrogenase carboxymethylated on cysteine-149 still reacted to form the dimer. The rate of chemical cross-linking was markedly decreased by increasing the NAD+ occupancy of the enzyme active sites. These experiments are discussed in terms of the asymmetry of the enzyme structure in solution.
机译:双氯甲基戊二酮,双氯甲基己二酮,双氯甲基辛二酮和双氯甲基癸二酮是通过双酰基氯和双重氮甲基酮衍生物由其相应的二羧酸合成的。这些化合物被证明是兔骨骼肌甘油醛3-磷酸脱氢酶的高度特异性交联剂。将酶与交联剂一起孵育会导致时间和浓度依赖性的共价连接的寡聚结构的形成。通过十二烷基硫酸钠/聚丙烯酰胺-凝胶电泳检测到的主要交联产物是二聚体(摩尔重量。72000)。交联酶的Sepharose 6B色谱分析表明它仍以四聚体形式存在。交联取决于酶的天然结构,因为它在酶变性时被取消。实际的共价连接产物取决于修饰条件和试剂的链长。使用双氯甲基己二酮可获得最大的二聚体收率(70-80%),使用短链或长链化合物均会降低收率。双氯甲基己二酮中两个反应点之间的计算距离为1.21-1.45nm。双氯甲基己二酮修饰每个单体至少两个巯基。活性位点巯基半胱氨酸-149的修饰对于交联不是必需的,因为在半胱氨酸-149上羧甲基化的甘油三磷酸3-磷酸脱氢酶仍然反应形成二聚体。通过增加酶活性位点的NAD +占有率,化学交联速率明显降低。根据溶液中酶结构的不对称性讨论了这些实验。

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    Bloxham, David P.;

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  • 年度 1977
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  • 原文格式 PDF
  • 正文语种 en
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