Combining (bio-)catalysis and molecular self-assembly provides an effective approach for the production and processing of self-assembled materials, by exploiting catalysis to direct the assembly kinetics and hence control the formation of ordered nanostructures. Applications of (bio-)catalytic self-assembly in biologically interfacing systems and in nanofabrication have recently been reported. Inspired by self-assembly in biological cells, efforts to confine catalysts on flat or patterned surfaces to exert spatial control over molecular gelator generation and nanostructure self-assembly have also emerged. Building on our previous work in the area, we demonstrate in this report the use of enzymes immobilized onto magnetic nanoparticles (NPs)...
Supramolecular gels, which demonstrate tunable functionalities, have attracted much interest in a ra...
Catalyst function is tightly controlled in biology by means of compartmentalization and positional a...
We demonstrate supramolecular peptide nanofibers that display dynamic instability, i.e. they are for...
Combining (bio-)catalysis and molecular self-assembly provides an effective approach for the product...
Self-assembly of molecular building blocks has attracted increasing interest as an effective bottom-...
Biocatalytic control of molecular self-assembly provides an effective approach for developing smart ...
This review article covers recent developments in the use of enzyme-catalyzed reactions to control m...
International audienceSpatial localization of biocatalysts, such as enzymes, has recently proven to ...
For the development of applications and novel uses for peptide nanostructures, robust routes for the...
YesFor the development of applications and novel uses for peptide nanostructures, robust routes for ...
This thesis was previously held under moratorium from 27th July 2015 until 1st April 2020Molecular s...
There is an increasing interest in synthetic systems that can execute bioinspired chemical reactions...
This chapter highlights recent developments in enzyme-responsive gels. The focus is on peptide-based...
Enzyme-catalyzed reactions can be exploited to control molecular self-assembly under physiological c...
Supramolecular gels, which demonstrate tunable functionalities, have attracted much interest in a ra...
Catalyst function is tightly controlled in biology by means of compartmentalization and positional a...
We demonstrate supramolecular peptide nanofibers that display dynamic instability, i.e. they are for...
Combining (bio-)catalysis and molecular self-assembly provides an effective approach for the product...
Self-assembly of molecular building blocks has attracted increasing interest as an effective bottom-...
Biocatalytic control of molecular self-assembly provides an effective approach for developing smart ...
This review article covers recent developments in the use of enzyme-catalyzed reactions to control m...
International audienceSpatial localization of biocatalysts, such as enzymes, has recently proven to ...
For the development of applications and novel uses for peptide nanostructures, robust routes for the...
YesFor the development of applications and novel uses for peptide nanostructures, robust routes for ...
This thesis was previously held under moratorium from 27th July 2015 until 1st April 2020Molecular s...
There is an increasing interest in synthetic systems that can execute bioinspired chemical reactions...
This chapter highlights recent developments in enzyme-responsive gels. The focus is on peptide-based...
Enzyme-catalyzed reactions can be exploited to control molecular self-assembly under physiological c...
Supramolecular gels, which demonstrate tunable functionalities, have attracted much interest in a ra...
Catalyst function is tightly controlled in biology by means of compartmentalization and positional a...
We demonstrate supramolecular peptide nanofibers that display dynamic instability, i.e. they are for...