Interpreting the behavior of enzymes: purpose or pedigree?

S Benner, A D Ellington
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引用次数: 39

Abstract

To interpret the growing body of data describing the structural, physical, and chemical behaviors of biological macromolecules, some understanding must be developed to relate these behaviors to the evolutionary processes that created them. Behaviors that are the products of natural selection reflect biological function and offer clues to the underlying chemical principles. Nonselected behaviors reflect historical accident and random drift. This review considers experimental data relevant to distinguishing between nonfunctional and functional behaviors in biological macromolecules. In the first segment, tools are developed for building functional and historical models to explain macromolecular behavior. These tools are then used with recent experimental data to develop a general outline of the relationship between structure, behavior, and natural selection in proteins and nucleic acids. In segments published elsewhere, specific functional and historical models for three properties of enzymes--kinetics, stereospecificity, and specificity for cofactor structures--are examined. Functional models appear most suitable for explaining the kinetic behavior of proteins. A mixture of functional and historical models appears necessary to understand the stereospecificity of enzyme reactions. Specificity for cofactor structures appears best understood in light of purely historical models based on a hypothesis of an early form of life exclusively using RNA catalysis.

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解释酶的行为:目的还是谱系?
为了解释描述生物大分子的结构、物理和化学行为的不断增长的数据体,必须发展一些理解,将这些行为与创造它们的进化过程联系起来。作为自然选择产物的行为反映了生物功能,并为潜在的化学原理提供了线索。非选择行为反映了历史的偶然性和随机漂移。本文综述了生物大分子中与区分非功能行为和功能行为有关的实验数据。在第一部分中,开发了用于构建功能和历史模型来解释大分子行为的工具。然后将这些工具与最近的实验数据结合起来,勾勒出蛋白质和核酸的结构、行为和自然选择之间关系的总体轮廓。在其他地方发表的片段中,研究了酶的三个特性的特定功能和历史模型——动力学、立体特异性和辅助因子结构的特异性。功能模型似乎最适合解释蛋白质的动力学行为。功能模型和历史模型的混合对于理解酶反应的立体特异性似乎是必要的。根据基于早期生命形式完全使用RNA催化的假设的纯历史模型,似乎最好地理解辅助因子结构的特异性。
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Enzymes of nucleotide metabolism: the significance of subunit size and polymer size for biological function and regulatory properties. Spectrin and related molecules. Transcription elements and factors of RNA polymerase B promoters of higher eukaryotes. Initiation of coagulation by tissue factor. Interpreting the behavior of enzymes: purpose or pedigree?
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