Glucose‐Triggered Gelation of Supramolecular Peptide Nanocoils with Glucose‐Binding Motifs

Author:

Yu Sihan1,Ye Zhou1,Roy Rajdip1,Sonani Ravi R.2,Pramudya Irawan1,Xian Sijie1,Xiang Yuanhui1,Liu Guoqiang3,Flores Belen1,Nativ‐Roth Einat4,Bitton Ronit4,Egelman Edward H.2,Webber Matthew J.1ORCID

Affiliation:

1. Department of Chemical & Biomolecular Engineering University of Notre Dame 105 McCourtney Hall Notre Dame IN 46556 USA

2. Department of Biochemistry and Molecular Genetics University of Virginia Charlottesville VA 22903 USA

3. Integrated Biomedical Sciences Program University of Notre Dame Notre Dame IN 46556 USA

4. Department of Chemical Engineering Ben‐Gurion University of the Negev Beer‐Sheva 84105 Israel

Abstract

AbstractPeptide self‐assembly is a powerful tool to prepare functional materials at the nanoscale. Often, the resulting materials have high aspect‐ratio, with intermolecular β‐sheet formation underlying 1D fibrillar structures. Inspired by dynamic structures in nature, peptide self‐assembly is increasingly moving toward stimuli‐responsive designs wherein assembled structures are formed, altered, or dissipated in response to a specific cue. Here, a peptide bearing a prosthetic glucose‐binding phenylboronic acid (PBA) is demonstrated to self‐assemble into an uncommon nanocoil morphology. These nanocoils arise from antiparallel β‐sheets, with molecules aligned parallel to the long axis of the coil. The binding of glucose to the PBA motif stabilizes and elongates the nanocoil, driving entanglement and gelation at physiological glucose levels. The glucose‐dependent gelation of these materials is then explored for the encapsulation and release of a therapeutic agent, glucagon, that corrects low blood glucose levels. Accordingly, the release of glucagon from the nanocoil hydrogels is inversely related to glucose level. When evaluated in a mouse model of severe acute hypoglycemia, glucagon delivered from glucose‐stabilized nanocoil hydrogels demonstrates increased protection compared to delivery of the agent alone or within a control nanocoil hydrogel that is not stabilized by glucose.

Funder

JDRF

Leona M. and Harry B. Helmsley Charitable Trust

American Diabetes Association Research Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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