This approach uses reversible host-guest recognition to build and control supramolecular assemblies at biointerfaces. The abstract frames it as a route to multifunctional, stimuli-responsive biosurfaces.
First-pass extracted concept
host-guest chemistry at interfaces
Candidate: concept label1 source documents3 linked claims
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host-guest interactions, supramolecular chemistry at interfaces
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Host-guest chemistry can improve the selectivity of biomolecule-ligand binding through recognition-directed interactions.
Quoted textsource-backed
Host-guest chemistry can greatly improve the selectivity of biomolecule-ligand binding on account of recognition-directed interactions.
Combining host-guest chemistry and surface science is critical for fabricating multifunctional biointerfaces with stimuli-responsiveness and biocompatibility.
Quoted textsource-backed
combining host-guest chemistry and surface science is critical for fabricating the next generation of multifunctional biointerfaces with efficient stimuli-responsiveness and good biocompatibility
Host-guest chemistry provides an alternative methodology for programmable and controllable engineering of supramolecular soft materials through reversible binding between complementary components.
Quoted textsource-backed
these highly selective, strong yet dynamic interactions can be exploited as an alternative methodology for applications in the field of programmable and controllable engineering of supramolecular soft materials through the reversible binding between complementary components