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THE ENERGETICS OF HYDROGEN BONDS IN MODEL SYSTEMS - IMPLICATIONS FOR ENZYMATIC CATALYSIS

机译:模型系统中氢键的能量-酶催化的意义。

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Low-barrier or short, strong hydrogen bonds have been proposed to contribute 10 to 20 kilocalories per mole to transition-state stabilization in enzymatic catalysis. The proposal invokes a large increase in hydrogen bond energy when the pK(a) values of the donor and acceptor (where K-a is the acid constant) become matched in the transition state (Delta pK(a) = 0). This hypothesis was tested by investigating the energetics of hydrogen bonds as a function of Delta pK(a) for homologous series of compounds under nonaqueous conditions that are conducive to the formation of low-barrier hydrogen bonds. In all cases, there was a linear correlation between the increase in hydrogen-bond energy and the decrease in Delta pK(a), as expected from simple electrostatic effects. However, no additional energetic contribution to the hydrogen bond was observed at Delta pK(a) = 0. These results and those of other model studies suggest alternative mechanisms by which hydrogen bonds can contribute to enzymatic catalysis, in accord with conventional electrcstatic considerations.
机译:已经提出了低势垒或短而强的氢键对酶催化的过渡态稳定贡献每摩尔10至20千卡。当供体和受体的pK(a)值(其中K-a为酸常数)在过渡态(Delta pK(a)= 0)匹配时,该提议引起氢键能的大幅增加。通过研究在非水条件下有助于形成低势垒氢键的同系列化合物的氢键的能量随Delta pK(a)的变化来检验该假设。在所有情况下,氢键能的增加与ΔpK(a)的减少之间都存在线性关系,这是简单的静电效应所预期的。但是,在Delta pK(a)= 0时,未观察到对氢键的其他能量贡献。这些结果和其他模型研究的结果表明,与常规的静电抑制因素一致,氢键可通过其他机制促进酶催化。

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