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RESEARCH PRODUCT

Evaluation of Charge‐Regulated Supramolecular Copolymerization to Tune the Time Scale for Oxidative Disassembly of β‐Sheet Comonomers

David StraβburgerMoritz UrschbachLydia ZengerlingRonja OtterChristian M. BeracPol Besenius

subject

Polymers and PlasticsMacromolecular SubstancesPolymersSupramolecular chemistryBeta sheet02 engineering and technology010402 general chemistry01 natural scienceschemistry.chemical_compoundThioetherAmphiphilePolymer chemistryMaterials ChemistryCopolymerAmino Acidschemistry.chemical_classificationNanotubesHydrogen bondOrganic ChemistryHydrogen BondingSulfoxideHydrogen-Ion Concentration021001 nanoscience & nanotechnology0104 chemical sciencesSupramolecular polymerschemistryProtein Conformation beta-StrandPeptidesReactive Oxygen Species0210 nano-technologyOxidation-Reduction

description

A multistimuli-responsive supramolecular copolymerization is reported. The copolymerization is driven by hydrogen bond encoded β-sheet-based charge co-assembly into 1D nanorods in water, using glutamic acid or lysine residues in either of the peptide comonomers. The incorporation of methionine as hydrophobic amino acid supports β-sheet formation, but oxidation of the thioether side-chain to a sulfoxide functional group destabilizes the β-sheet ordered domains and induces disassembly of the supramolecular polymers. Using H2 O2 as reactive oxygen species, the time scale and kinetics of the oxidative disassembly are probed. Compared to the charge neutral homopolymers, it is found that the oxidative disassembly of the charged ampholytic copolymers is up to two times faster and is operative at neutral pH. The strategy is therefore an important addition to the growing field of amphiphilic polythioether containing (macro)molecular building blocks, particularly in view of tuning their oxidation induced disassembly which tends to be notoriously slow and requires high concentrations of reactive oxygen species or acidic reaction media.

https://doi.org/10.1002/marc.201900476