Dynamic, Reconfigurable, and Hierarchical Biosynthetic Composites via Collagen Self‐Assembly within Highly Crowded Microgel Pastes

E Elif Narbay (Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA) A Abbygail Caine (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) S Sanika Pandit (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) G Gabrielle Montgomery (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) M Marion Harper (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) E E. Daniel Cárdenas‐Vásquez (Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA) H Hatte Hamilton (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) M Megan Hicks (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) D Daniel Mattar (Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA) K Kyle Choy (Schmid College of Science and Technology Chapman University Orange CA 92866 USA) M Marco Bisoffi L L. Andrew Lyon (Schmid College of Science and Technology and Fowler School of Engineering, Chapman University)

Abstract

Abstract The fabrication of a new class of biomimetic biomaterials is reported using nanostructured microgel pastes formed from “overpacked” assemblies of ultrasoft poly( N ‐isopropyl acrylamide‐ co ‐acrylic acid) microgels and their composites with collagen. Despite the solid‐like nature of microgel pastes, collagen fibrillogenesis is robust and rapid, with a 3D collagen network forming throughout the paste volume. Structural organization within the composite is interrogated via a suite of microscopy methods, while rheological characterization provides insight into the static and dynamic mechanical properties of the materials. Long‐range fibrillogenesis is enabled by local crowding, dynamics, and spatial reconfigurability of pastes at the colloidal length‐scale, and by liquid–liquid phase separation during fibril formation, features that mimic the dynamic reorganization of natural extracellular matrix. In vitro 3D cell culture studies illustrate that the paste is non‐toxic, permeable to nutrients, and permissive to cell invasion, while collagen fibers present sites for cell attachment and spreading. Together, these results suggest the platform's potential in the development of tissue scaffolds that mimic crowded and dynamic biological tissues. These materials address the need for new approaches to biomaterials that offer dynamic, bio‐integrative environments for tissue healing and regenerative medicine via synthetic and spatial control from the polymer to the macroscopic length scales.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

E

Elif Narbay

Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA

A

Abbygail Caine

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

S

Sanika Pandit

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

G

Gabrielle Montgomery

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

M

Marion Harper

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

E

E. Daniel Cárdenas‐Vásquez

Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA

H

Hatte Hamilton

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

M

Megan Hicks

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

D

Daniel Mattar

Dale E. and Sarah Ann Fowler School of Engineering Chapman University Orange CA 92866 USA

K

Kyle Choy

Schmid College of Science and Technology Chapman University Orange CA 92866 USA

M

Marco Bisoffi

L

L. Andrew Lyon

Schmid College of Science and Technology and Fowler School of Engineering, Chapman University