<i>De Novo</i> Autogenic Engineered Living Functional Materials

H Hoda M. Hammad (Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA) S Seth Swarnadeep (Department of Chemical Engineering Virginia Tech Blacksburg Virginia USA) E Erin C. Jackson (Macromolecules Innovation Institute Virginia Tech Blacksburg Virginia USA) N Nicolas Burns (Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA) H Hongyu Wang (School of Pharmacy & State Key Laboratory of Applied Organic Chemistry, College of Chemistry and Chemical Engineering) H Harrison Priode (Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA) R Robert B. Moore (Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) S Sanket Deshmukh A Avinash Manjula‐Basavanna (Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA) A Anna M. Duraj‐Thatte (Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA)

Abstract

ABSTRACT Autogenic engineered living materials (ELMs) enable the in situ production and engineering of native extracellular matrix (ECM). However, existing autogenic ELMs remain limited in scope and functionality. Here, we present a versatile platform for de novo autogenic functional ELMs, leveraging protein mining, computational modeling, and synthetic biology. By analyzing 33,564 CsgA‐like homologs, we identify candidates for de novo ECM protein nanofibers. Using AlphaFold2 and molecular dynamics simulations, we elucidate the structural stability of these β‐solenoid proteins. By reprogramming the Escherichia coli curli machinery, we achieve the biosynthesis of CsgA‐like ELMs from non‐model bacteria, featuring up to a 9‐fold increased molecular weight and expanded β‐sheet repeat units. Furthermore, we fabricate macroscopic biomaterials with enhanced mechanical properties (a 3‐fold increase in storage modulus), and their extracellular fiber networks attenuate UV‐C irradiation, extending the survival of embedded cells by 5‐fold. We further demonstrate programmable functionalities, including 3D printability and selective binding to nanoparticles and antibodies. This work establishes a powerful framework for discovering, designing, and harnessing natural biomolecular systems to advance next‐generation autogenic ELMs.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 31, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

H

Hoda M. Hammad

Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA

S

Seth Swarnadeep

Department of Chemical Engineering Virginia Tech Blacksburg Virginia USA

E

Erin C. Jackson

Macromolecules Innovation Institute Virginia Tech Blacksburg Virginia USA

N

Nicolas Burns

Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA

H

Hongyu Wang

School of Pharmacy & State Key Laboratory of Applied Organic Chemistry, College of Chemistry and Chemical Engineering

H

Harrison Priode

Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA

R

Robert B. Moore

Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA

S

Sanket Deshmukh

A

Avinash Manjula‐Basavanna

Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA

A

Anna M. Duraj‐Thatte

Department of Biological Systems Engineering Virginia Tech Blacksburg Virginia USA