Recent Advances in Click Chemistry Applied to Dendrimer Synthesis
Abstract
:1. Introduction
2. Click Reactions Applied to Dendrimers
2.1. Dendrimers
2.2. The Click Chemistry Paradigm Applied to Dendrimers
2.2.1. Copper-Assisted Azide-Alkyne Cycloaddition (CuAAC)
Catalyst | Base/Acid/Reductant/Ligand | Solvent | Temp. | Type of Architecture | Typical Reference |
---|---|---|---|---|---|
CuSO4 | NaAsc, THPTA, TBTA, Ph-COOH, K2CO3, NaHCO3 | H2O, THF, DMF, t-BuOH a, EtOH a, MeOH a | rt, 50 °C, 85 °C b, MW | PAMAM, Fréchet-type, Percec-type, polyesters, PEG branches, polypeptides, others | [30,31,38,39,40] |
CuOAc | NaAsc, THPTA, TBTA | DMF, MeOH | rt, 100 °C | Polypeptides, others | [39,41] |
CuI | Et3N, DIPEA | DMF, THF, DCM | rt | PAMAM, polyesters, polypeptides, others | [40,42,43,44] |
CuBr | PMEDTA | DMF, THF | rt, 40 °C | PEG-branches, others | [38,45,46] |
CuF2 | - | MeOH, H2O | 40 °C | Polyesters | [40] |
Cu(MeCN)4PF6 | DIPEA | MeOH, DCM | rt | Peptides | [47] |
Metallic Cu | Et3NH4Ac | MeOH | MW (7h), 70 °C | Phosphocarbohydrates | [48,49] |
Method | Comment | Typical Reference |
---|---|---|
NH4Cl sat. washes | This is a pH 5 solution that can be basified by adding NH4OH. We found that several washes were needed. | [44] |
EDTA washes | Because of EDTA four pKa values, we observed a great variability of pH and efficiency, depending on the commercial version used. | [70] |
KCN washes | Given the high toxicity of HCN, this solution needs to be kept basic until safely discarded. | [71] |
Dialysis | This method is the longest and suits hydrophilic dendrimers that are unfit for aqueous/organic washes. Dilute EDTA can be added to the external solution. | [72,73] |
2.2.2. The Thiol-ene and Thiol-yne Click Reactions
2.2.3. The Diels-Alder (DA) Reaction
2.2.4. Upcoming Click Reactions for Dendrimers
3. Structural Advances
3.1. Rise of Complexity
3.1.1. Difficult Decorations and other High Molar Mass Dendrimers
3.1.2. Janus and Controlled 3-Face Dendrimers
3.1.3. The “Core-Shell-Surface” and the “Onion Peel” Strategies
3.1.4. Advances in Dendronized Polymer Synthesis
3.1.5. Vesicles and Micelles
3.1.6. Degradable Dendrimers
3.1.7. Other Complex Assemblies
3.2. New Dendritic Architectures Featuring Click Chemistry
4. Conclusions
Acknowledgments
Conflicts of Interest
References and Notes
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Arseneault, M.; Wafer, C.; Morin, J.-F. Recent Advances in Click Chemistry Applied to Dendrimer Synthesis. Molecules 2015, 20, 9263-9294. https://doi.org/10.3390/molecules20059263
Arseneault M, Wafer C, Morin J-F. Recent Advances in Click Chemistry Applied to Dendrimer Synthesis. Molecules. 2015; 20(5):9263-9294. https://doi.org/10.3390/molecules20059263
Chicago/Turabian StyleArseneault, Mathieu, Caroline Wafer, and Jean-François Morin. 2015. "Recent Advances in Click Chemistry Applied to Dendrimer Synthesis" Molecules 20, no. 5: 9263-9294. https://doi.org/10.3390/molecules20059263
APA StyleArseneault, M., Wafer, C., & Morin, J. -F. (2015). Recent Advances in Click Chemistry Applied to Dendrimer Synthesis. Molecules, 20(5), 9263-9294. https://doi.org/10.3390/molecules20059263