| Literature DB >> 26999090 |
Patrik Stenström1, Oliver C J Andrén2, Michael Malkoch3.
Abstract
Bifunctional dendrons based on 2,2-bis(methylol)propionic acid (bis-MPA) are highly desirable scaffolds for biomedical applications. This is due to their flawless nature and large and exact number of functional groups as well as being biodegradable and biocompatible. Herein, we describe a facile divergent growth approach to their synthesis from monobenzylated tetraethylene glycol and post functionalization utilizing fluoride-promoted esterification (FPE) chemistry protocols. The scaffolds, presenting selectively deprotectable hydroxyls in the periphery and at the focal point, were isolated on a multigram scale with excellent purity up to the fourth generation dendron with a molecular weight of 2346 Da in seven reactions with a total yield of 50%. The third generation dendron was used as a model compound to demonstrate its functionalizability. Selective deprotection of the dendron's focal point was achieved with an outstanding yield of 94%, and biotin as well as azido functionalities were introduced to its focal point and periphery, respectively, through FPE chemistry. Bulky disperse red dyes were clicked through CuAAC to the dendron's azido groups, giving a biotinylated dendron with multivalent dyes with a molecular weight of 6252 Da in a total yield of 37% in five reactions with an average yield of 82% starting from the third generation focally and peripherally protected dendron. FPE chemistry proved to be a superb improvement over previous protocols towards bis-MPA dendrons as high purity and yields were obtained with less toxic solvents and greatly improved monomer utilization.Entities:
Keywords: CuAAC click chemistry; FPE chemistry; biotin; bis-MPA; carbonyl diimidazole; dendritic polymers; dendron; polyesters
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Year: 2016 PMID: 26999090 PMCID: PMC6273928 DOI: 10.3390/molecules21030366
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Schematic of the growth of the dendritic scaffold with FPE chemistry with acquired MALDI and NMR spectra, showing the systematic increase in protons per generation.
Figure 2MALDI spectra of the materials obtained through modification of the dendritic scaffold, giving the final biotinylated generation three dendron with eight disperse red dyes at the periphery, and absorbance of acetylene modified disperse red 13 (DR13) and Biotin-TEG-G3-DR13 (13) plotted against concentration. The small insertion shows absorbance spectra of DR13 from 300 to 800 nm.