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Conformational Control in Main Group Phosphazane Anion Receptors and Transporters

机译:磷氮烷主离子受体和转运蛋白的构象控制

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摘要

Anion binding by receptor molecules is a central field of modern chemistry which impacts areas of catalysis as well as biological and materials chemistry. As binding often requires high chemical stability under aerobic and aqueous conditions for practical applications, carbon-based anion receptors have dominated this field, with main group element analogues receiving far less attention. The recent observation that the air- and moisture-stable amino-cyclophosph(V)azanes of the type [RN(E)P(μ-NR)]_2 (E = O, S, Se) can exhibit halide binding that is competitive with topologically related organic receptors (such as squaramides and thioureas) has motivated us here to explore how the binding properties of phosphazane receptors can be enhanced further. Coordination of transition metals by the two P,N metal coordination sites of the phosph(III)azane dimer [(2-py)NHP(μ-N~tBu)]_2 not only activates the receptor for anion binding (by fixing the optimum exo-exo conformation and polarizing the endocyclic N—H substituents) but also stabilizes the P_2N_2 ring to hydrolysis and oxidation. We show how the binding properties of these receptors can be modulated by the coordinated metal fragments and that they can bind chloride 1 to 2 orders of magnitude stronger than the related squaramides and thioureas. These features can be utilized in anion transport through phospholipid bilayers under aqueous conditions for which transport can be improved by 1 order of magnitude compared to the previous best phosphazane and thiourea transporters. This study demonstrates how careful design of inorganic systems can result in potent supramolecular functionality, beyond that observed for organic counterparts.
机译:受体分子与阴离子的结合是现代化学的中心领域,它影响催化领域以及生物和材料化学。在实际应用中,结合通常需要在有氧和水性条件下具有很高的化学稳定性,因此碳基阴离子受体已占据了这一领域,主要的基团元素类似物受到的关注很少。最近的观察结果表明,[RN(E)P(μ-NR)] _ 2(E = O,S,Se)类型的空气和湿气稳定的氨基环磷(V)氮杂可以表现出竞争性的卤化物结合与拓扑相关的有机受体(如方胺和硫脲)结合在一起的动机促使我们探索如何进一步增强磷氮烷受体的结合特性。磷(III)氮烷二聚体[(2-py)NHP(μ-N〜tBu)] _ 2的两个P,N金属配位点对过渡金属的配位不仅激活了阴离子结合的受体(通过固定最佳exo-exo构象并极化内环N-H取代基),还可以稳定P_2N_2环使其水解和氧化。我们展示了如何通过配位的金属片段来调节这些受体的结合特性,并且它们可以结合比相关的方酰胺和硫脲强1至2个数量级的氯化物。这些特征可用于在水性条件下通过磷脂双层的阴离子转运,与先前的最佳磷氮烷和硫脲转运蛋白相比,其转运性能可提高1个数量级。这项研究表明,精心设计的无机系统可以产生强大的超分子功能,而有机同行所观察不到。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第2期|1029-1037|共9页
  • 作者单位

    Chemistry Department Cambridge University Lensfield Road Cambridge CB2 1EW U.K.;

    Cavendish Laboratory Department of Physics Cambridge University J. J. Thomson Avenue Cambridge CB3 0HE U.K.;

    Institut fuer Chemie und Biochemie Freie Universitaet Berlin Fabeckstr 34-36 14159 Berlin Germany;

    Department of Chemistry McGill University 801 Sherbrooke Street W Montreal Quebec H3A 0B8 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 05:17:04

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