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Active site investigations of the enzymes in the polyol pathway.

机译:多元醇途径中酶的活性位点研究。

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摘要

Many forms of diabetes can be treated, however, complication from diabetes remains one of the major causes of death by disease in the United States today. Among the potentially serious complications are blindness and cardiovascular disease. These symptoms may occur as a consequence of some abnormalities in carbohydrate metabolism. In particular the polyol metabolic pathway and the levels of the metabolic intermediate sorbitol have been implicated. The structure and specificity of the two enzymes that catalyze the metabolic interconversions in this pathway, aldose reductase and sorbitol dehydrogenase, have been examined. Through the use of alternative structures, specifically fluorosugars and deoxysugars, the active site of these enzymes were probed by using both classical kinetic studies and protein molecular modeling studies. In the case of aldose reductase, all of the deoxy and fluorodeoxy compounds that were examined were found to be substrates. The 3- and 4-fluoro analogues were ten to fifty-fold better substrates than the physiological substrate glucose. This overall enhancement is most likely due to a dipole effect of fluorine when this compound binds in the active site. Although this result was unexpected in the series of compounds that were studied, the observation is consistent with the broad specificity of aldose reductase, ranging from aliphatic to aromatic aldehydes. The substrate pattern for the sorbitol analogues with sorbitol dehydrogenase shows decreased binding for the 3- and 4-fluoro analogues, but enhanced binding for both the 6-deoxy and 6-fluoro substrate. The surprising result is that the 6-deoxy compound, which can neither donate nor accept a hydrogen bond, is the best substrate in this series of compounds. This 6-position is far removed from the site of reactivity, and is not thought to be involved in the reaction, since the five carbon analogue xylitol is a very good substrate. Molecular modeling studies suggest a more hydrophobic area around this portion of sorbitol binding site, which may better accommodate the binding of the deoxy substrate. The results of these studies serve to ascertain some of the details of how each of these enzymes in the polyol pathway function.
机译:可以治疗多种形式的糖尿病,但是,当今美国,糖尿病并发症仍然是由疾病导致死亡的主要原因之一。潜在的严重并发症包括失明和心血管疾病。这些症状可能是碳水化合物代谢异常的结果。特别地,涉及多元醇代谢途径和代谢中间山梨醇的水平。已经研究了在该途径中催化代谢相互转化的两种酶的结构和特异性,醛糖还原酶和山梨糖醇脱氢酶。通过使用替代结构,特别是氟糖和脱氧糖,可以通过经典动力学研究和蛋白质分子建模研究来探测这些酶的活性位点。在醛糖还原酶的情况下,发现所检查的所有脱氧和氟代脱氧化合物都是底物。 3-和4-氟类似物的底物比生理底物葡萄糖好十到五十倍。当该化合物结合在活性位点时,最有可能是由于氟的偶极效应引起的。尽管此结果在所研究的一系列化合物中是出乎意料的,但该观察结果与醛糖还原酶的广泛特异性(从脂族醛到芳族醛)一致。具有山梨糖醇脱氢酶的山梨糖醇类似物的底物模式显示出与3-和4-氟类似物的结合减少,但是与6-脱氧和6-氟底物的结合均增强。令人惊讶的结果是,既不提供氢键也不接受氢键的6-脱氧化合物是该系列化合物中最好的底物。由于五碳类似物木糖醇是非常好的底物,所以该6-位与反应位点相距很远,并且不认为其参与反应。分子模型研究表明,在山梨糖醇结合位点的这一部分周围有一个更大的疏水区域,可以更好地适应脱氧底物的结合。这些研究的结果有助于确定多元醇途径中每种酶的功能细节。

著录项

  • 作者

    Scott, Mary Ellen Ann.;

  • 作者单位

    The University of Akron.;

  • 授予单位 The University of Akron.;
  • 学科 Chemistry Biochemistry.; Chemistry Polymer.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;高分子化学(高聚物);
  • 关键词

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