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Hierarchical Self-Assembly of Discrete Organoplatinum(Ⅱ) Metallacycles with Polysaccharide via Electrostatic Interactions and Their Application for Heparin Detection

机译:离散有机铂(Ⅱ)金属环化合物与多糖的静电相互作用的分层自组装及其在肝素检测中的应用

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摘要

In recent past years, investigation of hierarchical self-assembly for constructing artificial functional materials has attracted considerable attention. Discrete metallacycles based on coordination bonds have proven to be valid scaffolds to fabricate various supra-molecular polymers or smart soft matter through hierarchical self-assembly. Here, we present the first example of the hierarchical self-assembly of discrete metallacycles by taking advantage of the positive charges of the organoplatinum(Ⅱ) metallacyde skeleton through multiple electrostatic interactions. Heparin, a sulfated glycosaminoglycan polymer that has been widely used as an anticoagulant drug, was selected to induce hierarchical self-assembly because of the existence of multiple negative charges. To investigate the hierarchical self-assembly process, an aggregation-induced emission (ALE) active moiety, tetra-phenylethylene (TPE), was introduced onto the metallacyde via coordination-driven self-assembly. Photophysical studies revealed that the addition of heparin to the tris-TPE metallacycles solution resulted in dramatic fluorescence enhancement, which supported the aggregation between metallacyde and heparin driven by multiple electrostatic interactions. Moreover, the entangled pearl-necklace networks were obtained through hierarchical self-assembly as detected by SEM, TEM, and LSCM experiments. In particular, single bead-like chains were observed in the AFM and TEM images, which provided direct, visual evidence for the aggregation of positively charged metallacycles and negatively charged heparin. More interestingly, further optical study demonstrated that this TPE-decorated metallacyde could function as a turn-on fluorescent probe for heparin detection with high sensitivity and selectivity. Thus, this research presents the first example of counter polyanion-induced hierarchical self-assembly of discrete metallacycles and provides a "proof-of-principle" method for heparin sensing and binding.
机译:近年来,用于构造人造功能材料的分层自组装的研究引起了相当大的关注。基于配位键的离散金属环已被证明是有效的支架,可以通过分层自组装来制造各种超分子聚合物或智能软物质。在这里,我们通过利用多个静电相互作用,利用有机铂(Ⅱ)金属化物骨架的正电荷,提出了离散金属环的分层自组装的第一个例子。由于存在多个负电荷,肝素是一种硫酸化的糖胺聚糖聚合物,已被广泛用作抗凝药物,因此被选择诱导分层自组装。为了研究分层的自组装过程,通过配位驱动的自组装将聚集诱导发射(ALE)活性部分四苯乙烯(TPE)引入到金属化物上。光物理研究表明,在tris-TPE金属环溶液中加入肝素会导致荧光显着增强,这支持了由多个静电相互作用驱动的金属化物与肝素之间的聚集。此外,缠结的珍珠项链网络是通过分层自组装获得的,如SEM,TEM和LSCM实验所检测。特别是,在AFM和TEM图像中观察到了单珠样链,这为带正电的金属环和带负电的肝素的聚集提供了直接的视觉证据。更有趣的是,进一步的光学研究表明,这种TPE修饰的金属肽可以用作肝素检测的开启荧光探针,具有高灵敏度和选择性。因此,本研究提出了反聚阴离子诱导的离散金属环的分层自组装的第一个例子,并提供了肝素感测和结合的“原理证明”方法。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2015年第36期|11725-11735|共11页
  • 作者单位

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, East China Normal University, Shanghai 200062, PR China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, East China Normal University, Shanghai 200062, PR China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, East China Normal University, Shanghai 200062, PR China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, East China Normal University, Shanghai 200062, PR China,Department of Chemistry and Biochemistry & Materials Science, Engineering, and Commercialization Program, Texas State University, San Marcos, Texas 78666, United States;

    Department of Chemistry, Beijing Normal University, Beijing 100050, PR China;

    Key Laboratory of Colloid, Interface and Chemical Thermodynamics, Institute of Chemistry, The Chinese Academy of Sciences, Beijing, 100080, PR China;

    Department of Chemistry, Beijing Normal University, Beijing 100050, PR China;

    Key Laboratory of Colloid, Interface and Chemical Thermodynamics, Institute of Chemistry, The Chinese Academy of Sciences, Beijing, 100080, PR China;

    Department of Chemistry and Biochemistry & Materials Science, Engineering, and Commercialization Program, Texas State University, San Marcos, Texas 78666, United States;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, East China Normal University, Shanghai 200062, PR China;

  • 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);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:09:49

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