Molecular Design Institute and Department of Chemistry, New York University, New York, New York 10003-6688, USA.
J Am Chem Soc. 2010 Mar 24;132(11):3923-31. doi: 10.1021/ja910581d.
Functionalization of a poly(amido)-based dendron with ethylene glycol chains (PEG) using copper-catalyzed alkyne azide cycloaddition (CuAAC) afforded dendrons with significant levels of copper contaminations, preventing the use of such materials for biological applications. We suggest that the presence of amide, PEG, and triazole functional groups allows for copper complexation, thereby preventing the separation of the copper catalyst from the final dendron. To minimize this problem, synthetic variations on CuAAC including the addition of "click" additives for copper sequestering as well as the use of copper wire as the copper source were investigated. None of these strategies, however, resulted in copper-free products. In contrast, we developed a copper-free strain-promoted alkyne azide cycloaddition (SPAAC) strategy that functionalized poly(amide)-based dendrons and dendrimers with PEG chains quantitatively under mild reaction conditions without any metal contamination. The SPAAC products were characterized by (1)H and (13)C NMR, 2D HSQC and COSY NMR, mass spectrometry, and elemental analysis. This is the first report on the use of SPAAC for dendrimer functionalization, and the results obtained here show that SPAAC is an important tool to the dendrimer and more general biomaterials community for the functionalization of macromolecular structures due to the mild and metal-free reaction conditions, no side products, tolerance toward functional groups, and high yields.
使用铜催化的叠氮炔环加成(CuAAC)将聚(酰胺)基树枝状分子与乙二醇链(PEG)进行功能化,得到的树枝状分子中含有大量的铜污染物,这阻止了此类材料在生物应用中的使用。我们认为酰胺、PEG 和三唑官能团的存在允许铜络合,从而防止最终的树枝状分子中的铜催化剂分离。为了最小化这个问题,我们研究了 CuAAC 的合成变化,包括添加“点击”添加剂以螯合铜以及使用铜丝作为铜源。然而,这些策略都没有得到无铜产品。相比之下,我们开发了一种无铜应变促进的叠氮炔环加成(SPAAC)策略,该策略在温和的反应条件下定量地将 PEG 链功能化到聚(酰胺)基树枝状分子和树枝状聚合物上,没有任何金属污染。SPAAC 产物通过(1)H 和(13)C NMR、2D HSQC 和 COSY NMR、质谱和元素分析进行了表征。这是 SPAAC 用于树枝状聚合物功能化的第一个报道,这里得到的结果表明 SPAAC 是树枝状聚合物和更广泛的生物材料社区的重要工具,因为 SPAAC 具有温和且无金属的反应条件、无副产物、对官能团的耐受性以及高收率。
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