由核碱基组成的生物有机金属配合物的功能组织

T. Moriuchi
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摘要

在这篇文章中,通过有机金属配合物与核碱基的偶联来设计生物有机金属配合物的最新进展集中在展示基于功能组织的特定性质上。以鸟苷为基础的Au(I)生物有机金属配合物通过自组织作为可靠的g -八聚体支架,显示出基于亲水性Au(I)-Au(I)相互作用的可切换发射。空四重奏、八聚体和聚合柱状聚集体的形成可以由钾离子的量控制。携带尿嘧啶片段的生物有机金属铂(II)配合物的发射特性的调整也通过改变氢键位点和具有尿嘧啶片段互补氢键位点的分子支架的方向来实现。半刚性桥接二膦配体被认为是磷原子在同侧排列以诱导Au(I)-Au(I)相互作用的关键因素,其中存在基于Au(I)-Au(I)轴的R -和S -对映体。值得注意的是,Au(I)-Au(I)轴的手性是由(R)-BINAP作为轴向手性桥接二膦配体引起的。生物有机金属配合物的另一个有趣的特点是它们通过核碱基部分之间的分子间氢键进行自组装的强烈倾向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Functional Organization of Bioorganometallic Complexes Composed of Nucleobases
In this account, recent advances in the design of bioorganometallic complexes by the conjugation of organometallic complexes with nucleobases are focused on to exhibit specific properties based on functional organization. A guanosine-based Au(I) bioorganometallic complex is demonstrated to serve as the reliable G-octamer scaffold via self-organization, showing a switchable emission based on aurophilic Au(I)-Au(I) interaction. The formation of the empty quartet, octamer, and polymeric columnar aggregate is able to be controlled by the amount of potassium ion. The tuning of the emission properties of the bioorganometallic platinum(II) complexes bearing a uracil moiety is also achieved by changing the direction of hydrogen bonding sites and the molecular scaffold having complementary hydrogen bonding sites for the uracil moiety. The semirigid bridging diphosphine ligand is performed to be a key factor in the arrangement of the phosphorus atoms on the same side to induce intramolecular Au(I)-Au(I) interaction, wherein R - and S -enantiomers based on Au(I)-Au(I) axis exist. It is noteworthy that the chirality of Au(I)-Au(I) axis is induced by the utilization of ( R )-BINAP as the axially chiral bridging diphosphine ligand. Another interesting feature of bioorganometallic complexes is their strong tendency to self-assemble through intermolecular hydrogen bonds between their nucleobase moieties.
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