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螯合硅树突:试图通过扰乱界面离子来影响生物体。

Chelating Silicone Dendrons: Trying to Impact Organisms by Disrupting Ions at Interfaces.

机构信息

Department of Chemistry and Chemical Biology, McMaster University, 1280 Main St. W., Hamilton, ON L8S 4M1, Canada.

出版信息

Molecules. 2022 Mar 14;27(6):1869. doi: 10.3390/molecules27061869.

Abstract

The viability of pathogens at interfaces can be disrupted by the presence of (cationic) charge and chelating groups. We report on the synthesis of silicone dendrimers and linear polymers based on a motif of hexadentate ligands with the ability to capture and deliver metal ions. Mono-, di- or trialkoxysilanes are converted in G1 to analogous vinylsilicones and then, iteratively using the Piers-Rubinsztajn reaction and hydrosilylation, each vinyl group is transformed into a trivinyl cluster at G2. The thiol-ene reaction with cysteamine or 3-mercaptopropionic acid and the trivinyl cluster leads to hexadentate ligands 3 × N-S or 3 × HOOC-S. The compounds were shown to effectively capture a variety of metals ions. Copper ion chelation was pursued in more detail, because of its toxicity. On average, metal ions form chelates with 2.4 of the three ligands in a cluster. Upon chelation, viscous oils are converted to (very) soft elastomers. Most of the ions could be stripped from the elastomers using aqueous EDTA solutions, demonstrating the ability of the silicones to both sequester and deliver ions. However, complete ion removal is not observed; at equilibrium, the silicones remain ionically crosslinked.

摘要

病原体在界面上的生存能力可能会被(阳离子)电荷和螯合基团破坏。我们报告了基于六齿配体的硅树枝状大分子和线性聚合物的合成,这些配体具有捕获和输送金属离子的能力。单、二或三烷氧基硅烷在 G1 中转化为类似的乙烯基硅氧烷,然后,通过 Piers-Rubinsztajn 反应和硅氢化反应,每一个乙烯基基团在 G2 中转化为三乙烯基簇。与半胱胺或 3-巯基丙酸的硫醇-烯反应以及三乙烯基簇导致六齿配体 3×N-S 或 3×HOOC-S。这些化合物被证明能够有效地捕获多种金属离子。由于铜离子的毒性,我们更详细地研究了铜离子的螯合作用。平均而言,金属离子与簇中的三个配体中的 2.4 个形成螯合物。螯合后,粘性油转化为(非常)软弹性体。大多数离子可以使用水性 EDTA 溶液从弹性体中洗脱出来,这表明硅酮具有螯合和输送离子的能力。然而,没有观察到完全去除离子;在平衡时,硅酮仍然离子交联。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2800/8954278/dfa4fe2fdb1d/molecules-27-01869-g001.jpg

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