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Supported Supramolecular Hydrogel Nanoarchitectonics for Tunable Biocatalytic Flow Activity. | LitMetric

AI Article Synopsis

  • Enzymatically-active polyelectrolyte multilayers (AP-PEM) create biocatalytic hydrogels when mixed with the tripeptide Fmoc-FFpY, which result in varying thickness based on the number of layers (n).
  • The resulting hydrogels exhibit a dense nanofibrous structure with enzymes organized in specific locations, enhancing both structural integrity and biocatalytic activity over time.
  • This enzyme-supported approach allows for controlled bioactivity and successful multi-catalytic processes in continuous flow systems, showcasing its versatility in biocatalysis.

Article Abstract

Enzymatically-active polyelectrolyte multilayers containing n layers of phosphatase (AP-PEM) induce the formation of supported biocatalytic supramolecular hydrogels when brought in contact with the precursor tripeptide Fmoc-FFpY (Fmoc = N-fluorenylmethyloxycarbonyl; F = Phenylalanine; Y = Tyrosine; p = phosphate group). AP-PEM triggers the spatially-localized hydrogelation reaching 2, 17 and 350 µm of thickness for n = 1, 2 and 3, respectively. As observed by cryo scanning electron microscopy, a dense nanofibrous network underpinning the hydrogel shows parallelly orientated Fmoc-FFY peptide-based fibrils, perpendicular to the substrate. For the gel generated by the AP-PEM, fluorescence confocal microscopy images show that during the peptide self-assembly, some enzymes are distributed in the hydrogel, preferentially located in few dozens of micrometers above the substrate. In addition, a self-assembly growth rate of 5 µm min is determined when the hydrogelation starts. Through transmission electron microscopy immuno-labelling experiments on self-assemblies generated in solution, we observe that AP are decorating the Fmoc-FFY nanofibers. It is observed both a long-term stability and a higher biocatalytic activity of the so AP-encapsulated hydrogel compared to the bare AP-PEM. This bioactivity can be tuned by the number n in batch and under continuous flow conditions. To illustrate the versatility of this enzyme-supported strategy, multi-catalytic transformations in continuous flow conditions have been successfully carried out using supported supramolecular hydrogel.

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Source
http://dx.doi.org/10.1002/smll.202405326DOI Listing

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