首页> 外文OA文献 >Ruthenium porphyrin-ß-cyclodextrin complexes as supramolecular enzyme models for regioselective cleavage of carotenoids
【2h】

Ruthenium porphyrin-ß-cyclodextrin complexes as supramolecular enzyme models for regioselective cleavage of carotenoids

机译:钌卟啉-β-环糊精复合物作为区域选择性裂解类胡萝卜素的超分子酶模型

摘要

All naturally occurring vitamin A derives from enzymatic oxidative cleavage of β,β-carotene or other carotenoids with pro-vitamin A activity. Two metabolic pathways of β,β-carotene to retinal (vitamin A aldehyde) have been proposed: the central cleavage providing 2 mol of retinal, and the excentric cleavage yielding apo-β-carotenals first, which are subsequently transformed into retinal. Each pathway is used preferentially in mammalian β,β-carotene metabolism, depending on the specific tissue.udDue to their unusual reactivity to regioselectively cleave one double bond in a conjugated polyene of very hydrophobic substrates, these enzymes present a formidable challenge to chemists interested in enzyme catalysis.udRegarding the central cleavage of carotenoids, considerable progress has been accomplished both with respect to the identification/isolation of the proteins from various tissues/species and concerning the synthesis of structural remote enzyme models which effectively mimic the enzymatic reaction.udThe excentric oxidative cleavage of carotenoids is not only significant to mammals but even more important in the plant kingdom providing metabolites used as fragrances and for defensive mechanism.udThe latter research area is overall less advanced than the former in particular no enzyme mimics have been available at the outset of this thesis.ududEncouraged by the success of complex 46 as an enzyme mimic for central cleavage of carotenoids (scheme 46), we decided to develop related supramolecular models to mimic the reactivity and selectivity of the enzymes catalyzing the excentric cleavage of carotenoids. Within this context, three β-CD linked ruthenium porphyrin complexes have been designed and synthesized.udThe first generation enzyme mimic, complex 58, designed by computer modelling, comprises a rigidly linked dimeric β-CD moiety as the substrate recognition site and a ruthenium porphyrin, attached to one of the primary faces of β-CDs, as site of reactivity.ududHowever, the reactivity of complex 58 towards 17,17’-dinor-φ,φ-carotene 84 reveals that this supramolecular model actually mimics the central cleavage pathway (scheme 47), which is consistent with the crystal structure of β-CD dimer moiety obtained later (figure 29). Owing to the modification of β-CD via 2,3-manno-epoxide and intramolecular self-assembling by hydrogen-bonding network, the diamide linker sits between β-CDs, blocking the entrance of the substrate to the second β-CD unit.ududIn order to avoid “capping” of β-CD by the linker, the second complex 89 was designed and synthesized (scheme 48). The dimeric β-CD moiety is linked by a C6-flexible chain directly on C(2). It is conceived that the linker might act as a loop outside the dimeric β-CD moiety, holding β-CDs together via a hydrogen-bonding network to produce an extended cavity as the substrate binding site. The results with 89/TBHP reveals that this complex cleaves carotenoids at C(13’)-C(14’) double bond, mimicking excentric cleavage to a certain extent.ududThe fact that mono-β-CD complex 83 could mimic the central cleavage of carotenoids was then used to design and prepare complex 113 which contains a rigid biphenyl linker, attached to the secondary face of β-CD, to increase the distance between the β-CD unit and the ruthenium porphyrin moiety (figure 30).ududThe reactivity of complex 113/TBHP towards carotenoid 84 is solvent dependent. A central cleavage was observed in DMF, whereas an excentric cleavage at C(14’)-C(13’) double bond was observed in the biphasic system. NOE spectra and computational calculation suggests that complex 113 adopts a partial folded conformaion in DMF, reducing the distance between β-CD and active ruthenium center.udIn conclusion the work presented here comprises the synthesis of several new monomeric and dimeric β-CD-ruthenium porphyrin complexes which in the presence of TBHP show the reactivity required to cleave conjugated double bond to aldehydes, depending on the relative orientation/distance of the substrate binding site (β-CD) to the reactive site (Ru=O). These complexes, binding carotenoids in a supramolecular fashion, cleave the symmetric polyolefins either at the central C(15)-C(15’) or slightly excentric C(13’)-C(14’) double bond. As such, these complexes mimic to a certain extent both classes of enzymes which metabolize carotenoids in nature.
机译:所有天然存在的维生素A均来自于具有维生素A活性的β,β-胡萝卜素或其他类胡萝卜素的酶促氧化裂解。已经提出了β,β-胡萝卜素到视网膜(维生素A醛)的两个代谢途径:中央裂解提供2摩尔的视网膜,偏心裂解首先产生apo-β-胡萝卜素,然​​后转化为视网膜。取决于特定的组织,每种途径都优先用于哺乳动物的β,β-胡萝卜素代谢。由于它们异常的反应性可以在非常疏水的底物的共轭多烯中选择性地裂解一个双键,这些酶对感兴趣的化学家提出了巨大的挑战在类胡萝卜素的中心裂解方面,在鉴定/分离来自各种组织/物种的蛋白质方面以及在有效模拟酶促反应的结构远程酶模型的合成方面都取得了长足进展。 ud类胡萝卜素的偏心氧化裂解不仅对哺乳动物具有重要意义,而且在植物界中提供代谢产物作为香气和防御机制的作用更为重要。 ud后者的研究领域总体上比前者的研究进展少,特别是没有酶模拟物在本文开始时。 ud ud为了成功地将复合物46用作类胡萝卜素的中心裂解酶模拟物(方案46),我们决定开发相关的超分子模型来模拟催化类胡萝卜素的外裂解的酶的反应性和选择性。在这种情况下,已经设计并合成了三种β-CD连接的钌卟啉复合物。 ud通过计算机建模设计的第一代酶模拟物复合物58,包括一个刚性连接的二聚β-CD部分作为底物识别位点和一个钌。卟啉附着在β-CDs的一个主要面上,作为反应位点。 ud ud但是,复合物58对17,17'-dior-φ,φ-胡萝卜素84的反应表明,这种超分子模型实际上是模仿的中心裂解途径(方案47),与后来获得的β-CD二聚体部分的晶体结构一致(图29)。由于β-CD通过2,3-甘露环氧化物的修饰和分子内通过氢键网络的自组装,二酰胺连接基位于β-CD之间,从而阻止了底物进入第二个β-CD单元。为了避免β-CD被连接子“封端”,第二复合物89被设计并合成(方案48)。二聚体β-CD部分通过C6柔性链直接连接在C(2)上。据认为,该接头可以充当二聚β-CD部分外部的环,通过氢键网络将β-CD保持在一起,以产生延伸的腔作为底物结合位点。 89 / TBHP的结果表明,该复合物在C(13')-C(14')双键处裂解类胡萝卜素,在一定程度上模拟了离心分离。 ud ud单-β-CD复合物83可以模拟的事实。然后使用类胡萝卜素的中心裂解来设计和制备复合物113,该复合物包含一个刚性联苯连接子,该连接子连接到β-CD的第二面上,以增加β-CD单元与钌卟啉部分之间的距离(图30)化合物113 / TBHP对类胡萝卜素84的反应性取决于溶剂。在DMF中观察到了中心裂解,而在双相系统中观察到了C(14'-C(13')双键的偏心裂解。 NOE光谱和计算结果表明,配合物113在DMF中采用了部分折叠的构象,从而减小了β-CD与活性钌中心之间的距离。 ud最后,本文提出的工作包括几种新的单体和二聚体β-CD-钌的合成。根据底物结合位点(β-CD)与反应位点的相对取向/距离(Ru = O),在TBHP存在下,卟啉络合物显示出裂解共轭双键与醛所需的反应性。这些复合物以超分子的方式结合类胡萝卜素,在中心C(15)-C(15')或稍微偏心的C(13')-C(14')双键处裂解对称聚烯烃。这样,这些复合物在一定程度上模拟了自然界中代谢类胡萝卜素的两类酶。

著录项

  • 作者

    Wang Hao;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
  • 中图分类

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号