Genetically Programmed Shape‐Morphing of Engineered Living Materials

ABSTRACT Engineered living materials (ELMs) promise genetically programmable functions by coupling biological regulation to synthetic material responses. Here, we introduce a strategy for genetically driven bidirectional shape‐morphing in a peptide‐crosslinked polyethylene glycol (PEG) hydrogel whose network density is modulated by opposing genetically encoded enzyme pairs that induce crosslinking or hydrolysis. These molecular transformations switch the hydrogel between deswelling, swelling, or partial disintegration, producing two‐ to five‐fold changes in mechanical properties. By fabricating a bilayer hydrogel composed of a responsive layer and a passive counterlayer, these network‐level modulations are translated into directional actuation with bending angles exceeding 80° and shape recovery. We further show that genetically engineered bacteria and mammalian cells can function as programmable enzyme sources, thereby coupling genetic programs to hydrogel network remodeling and material deformation. Using opposing out‐of‐equilibrium biochemical reactions with dynamically changing relative reaction rates, we demonstrate hybrid‐enzymatic genetic control over bending and autonomous shape recovery in bilayer hydrogels. This work establishes a customizable framework for genetically directed mechanical actuation in ELMs, in which living cells regulate macroscopic shapes through programmed network remodeling. More broadly, it provides proof‐of‐concept for genetically programmed shape‐morphing of ELMs and opens opportunities for future biohybrid actuators, adaptive material systems, and dynamic biomedical interfaces.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-17
DOI
https://doi.org/10.1002/adfm.78503
Primary Topic
Advanced Materials and Mechanics
Type
article
Field-Weighted Citation Impact
0.00

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article

Genetically Programmed Shape‐Morphing of Engineered Living Materials

Rosanne Schmachtenberg, Claudia Fink‐Straube, Jan Becker, Luai R. Khoury et al.
Advanced Functional Materials
Advanced Materials and Mechanics
article

Genetically Programmed Shape‐Morphing of Engineered Living Materials

Rosanne Schmachtenberg, Claudia Fink‐Straube, Jan Becker, Luai R. Khoury, Miguel Baños, Wilfried Weber, Yuchen Liu, Mahmudul Hasan
article en

Abstract

ABSTRACT Engineered living materials (ELMs) promise genetically programmable functions by coupling biological regulation to synthetic material responses. Here, we introduce a strategy for genetically driven bidirectional shape‐morphing in a peptide‐crosslinked polyethylene glycol (PEG) hydrogel whose network density is modulated by opposing genetically encoded enzyme pairs that induce crosslinking or hydrolysis. These molecular transformations switch the hydrogel between deswelling, swelling, or partial disintegration, producing two‐ to five‐fold changes in mechanical properties. By fabricating a bilayer hydrogel composed of a responsive layer and a passive counterlayer, these network‐level modulations are translated into directional actuation with bending angles exceeding 80° and shape recovery. We further show that genetically engineered bacteria and mammalian cells can function as programmable enzyme sources, thereby coupling genetic programs to hydrogel network remodeling and material deformation. Using opposing out‐of‐equilibrium biochemical reactions with dynamically changing relative reaction rates, we demonstrate hybrid‐enzymatic genetic control over bending and autonomous shape recovery in bilayer hydrogels. This work establishes a customizable framework for genetically directed mechanical actuation in ELMs, in which living cells regulate macroscopic shapes through programmed network remodeling. More broadly, it provides proof‐of‐concept for genetically programmed shape‐morphing of ELMs and opens opportunities for future biohybrid actuators, adaptive material systems, and dynamic biomedical interfaces.

Advanced Functional Materials
University of Freiburg (DE), Technion – Israel Institute of Technology (IL), Leibniz-Institute for New Materials (DE), University of Education Freiburg (DE), Saarland University (DE)
European Commission
Openalex Percentile: Top 20%
Advanced Materials and Mechanics
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