Loading…

Mechanical Properties of Tandem-Repeat Proteins Are Governed by Network Defects

Topological defects in highly repetitive structural proteins strongly affect their mechanical properties. However, there are no universal rules for structure–property prediction in structural proteins due to high diversity in their repetitive modules. Here, we studied the mechanical properties of ta...

Full description

Saved in:
Bibliographic Details
Published in:ACS biomaterials science & engineering 2018-03, Vol.4 (3), p.884-891
Main Authors: Pena-Francesch, Abdon, Jung, Huihun, Segad, Mo, Colby, Ralph H, Allen, Benjamin D, Demirel, Melik C
Format: Article
Language:English
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:Topological defects in highly repetitive structural proteins strongly affect their mechanical properties. However, there are no universal rules for structure–property prediction in structural proteins due to high diversity in their repetitive modules. Here, we studied the mechanical properties of tandem-repeat proteins inspired by squid ring teeth proteins using rheology and tensile experiments as well as spectroscopic and X-ray techniques. We also developed a network model based on entropic elasticity to predict structure–property relationships for these proteins. We demonstrated that shear modulus, elastic modulus, and toughness scale inversely with the number of repeats in these proteins. Through optimization of structural repeats, we obtained highly efficient protein network topologies with 42 MJ/m3 ultimate toughness that are capable of withstanding deformations up to 350% when hydrated. Investigation of topological network defects in structural proteins will improve the prediction of mechanical properties for designing novel protein-based materials.
ISSN:2373-9878
2373-9878
DOI:10.1021/acsbiomaterials.7b00830