Published April 16, 2024
| Version v1
Journal article
Open
Assembly of short amphiphilic peptoids into nanohelices with controllable supramolecular chirality
Creators
- 1. University of Washington
- 2. University of Chicago
- 3. Pacific Northwest National Laboratory
- 4. Georgia Institute of Technology
Description
A long-standing challenge in bioinspired materials is to design and synthesize synthetic materials that mimic the sophisticated structures and functions of natural biomaterials, such as helical protein assemblies that are important in biological systems. Herein, we report the formation of a series of nanohelices from a type of well-developed protein-mimetics called peptoids. We demonstrate that nanohelix structures and supramolecular chirality can be well-controlled through the side-chain chemistry. Specifically, the ionic effects on peptoids from varying the polar side-chain groups result in the formation of either single helical fiber or hierarchically stacked helical bundles. We also demonstrate that the supramolecular chirality of assembled peptoid helices can be controlled by modifying assembling peptoids with a single chiral amino acid side chain. Computational simulations and theoretical modeling predict that minimizing exposure of hydrophobic domains within a twisted helical form presents the most thermodynamically favorable packing of these amphiphilic peptoids and suggests a key role for both polar and hydrophobic domains on nanohelix formation. Our findings establish a platform to design and synthesize chiral functional materials using sequence-defined synthetic polymers.
Data availability
All data are available within the Article and Supplementary Files, or available from the corresponding authors on request.
Custom code is available from the corresponding author on request.
Files
Assembly-of-short-amphiphilic-peptoids-into-nanohelices-with-controllable-supramolecular-chirality.pdf
Additional details
Identifiers
- DOI
- 10.1038/s41467-024-46839-y
- Other
- oai:uchicago.tind.io:11560
Related works
- Is supplement to
- https://doi.org/10.1038/s41467-025-62950-0 (URL)
Funding
- Office of Basic Energy Sciences
- Energy Frontier Research Centers program
- Pacific Northwest National Laboratory
- DOE-BES biomolecular materials program
- Washington Research Foundation
- Postdoctoral Fellowship