TU Braunschweig, Institute of Organic Chemistry, Hagenring 30, 38106, Braunschweig, Germany.
TU Braunschweig, Institute of Physical and Theoretical Chemistry, and Braunschweig Integrated Centre of Systems Biology, Rebenring 56, 38106, Braunschweig, Germany.
Angew Chem Int Ed Engl. 2021 Apr 12;60(16):8766-8771. doi: 10.1002/anie.202016764. Epub 2021 Mar 17.
A range of unprocessed, reducing sugar substrates (mono-, di-, and trisaccharides) is shown to take part in a straightforward four-step synthetic route to water-soluble, uncharged BODIPY derivatives with unimpaired chiral integrity and high fluorescence efficiency. A wide compatibility with several postfunctionalizations is demonstrated, thus suggesting a universal utility of the multifunctional glycoconjugates, which we call GlycoBODIPYs. Knoevenagel condensations are able to promote a red-shift in the spectra, thereby furnishing strongly fluorescent red and far-red glycoconjugates of high hydrophilicity. The synthetic outcome was studied by X-ray crystallography and by comprehensive photophysical investigations in several solvent systems. Furthermore, cell experiments illustrate efficient cell uptake and demonstrate differential cell targeting as a function of the integrated chiral information.
一系列未加工的还原糖底物(单糖、二糖和三糖)被证明可参与直接的四步合成路线,从而得到水溶性、不带电荷的 BODIPY 衍生物,同时保持手性完整性和高荧光效率。多种后功能化的广泛兼容性得到了证明,从而表明这些多功能糖缀合物(我们称之为 GlycoBODIPYs)具有普遍的实用性。Knoevenagel 缩合能够促进光谱红移,从而提供高亲水性的强荧光红色和远红色糖缀合物。通过 X 射线晶体学和在几种溶剂系统中的综合光物理研究来研究合成结果。此外,细胞实验说明了有效的细胞摄取,并证明了作为整合手性信息的函数的细胞靶向差异。