Granular Hydrogel Composites as Matrices for Engineered Living Materials

Abstract The design of engineered living materials (ELMs) that integrate active cells offers opportunities to create dynamic, adaptive systems. However, current methods often use bulk hydrogels that can immobilize cells and limit their growth and migration, which affects their overall functionality for use as an ELM. Here, we developed a granular hydrogel composite composed of hydrogel particles (i.e., microgels), Escherichia coli (E. coli), and a cross-linkable polymer that can be crosslinked with light exposure when desired. We investigated the influence of matrix composition and incubation conditions on microcolony morphology and mechanical properties and observed that the addition of microgels to the composite results in larger bacterial colonies with roughened morphologies and that the granular hydrogel composite compressive modulus is dependent on the matrix composition and incubation conditions. To further demonstrate the potential of this system, we also showed that the granular hydrogel composites can be 3D printed into specified geometries, that the composites can be used for sustained release of bacteria, and that the un-crosslinked matrix supports chemotactic migration, producing cell density gradients that can be fixed in place with crosslinking. Overall, the granular hydrogel composites provide an approach for the fabrication of ELMs.

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Publication Details

Journal
ACS Applied Polymer Materials
Published
2026-09-25
DOI
https://doi.org/10.1021/acsapm.6c03807
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
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Granular Hydrogel Composites as Matrices for Engineered Living Materials

R. Kōnane Bay, Jason A. Burdick, Samson Oluwagbenga Adelani, Morgan B. Riffe
ACS Applied Polymer Materials
3D Printing in Biomedical Research
article

Granular Hydrogel Composites as Matrices for Engineered Living Materials

R. Kōnane Bay, Jason A. Burdick, Samson Oluwagbenga Adelani, Morgan B. Riffe
article en

Abstract

Abstract The design of engineered living materials (ELMs) that integrate active cells offers opportunities to create dynamic, adaptive systems. However, current methods often use bulk hydrogels that can immobilize cells and limit their growth and migration, which affects their overall functionality for use as an ELM. Here, we developed a granular hydrogel composite composed of hydrogel particles (i.e., microgels), Escherichia coli (E. coli), and a cross-linkable polymer that can be crosslinked with light exposure when desired. We investigated the influence of matrix composition and incubation conditions on microcolony morphology and mechanical properties and observed that the addition of microgels to the composite results in larger bacterial colonies with roughened morphologies and that the granular hydrogel composite compressive modulus is dependent on the matrix composition and incubation conditions. To further demonstrate the potential of this system, we also showed that the granular hydrogel composites can be 3D printed into specified geometries, that the composites can be used for sustained release of bacteria, and that the un-crosslinked matrix supports chemotactic migration, producing cell density gradients that can be fixed in place with crosslinking. Overall, the granular hydrogel composites provide an approach for the fabrication of ELMs.

ACS Applied Polymer Materials
University of Colorado Boulder (US), University of Colorado System (US), University of Colorado Colorado Springs (US), University of Colorado Denver (US)
Life in Land
Openalex Percentile: Top 21%
3D Printing in Biomedical Research
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Granular Hydrogel Composites as Matrices for Engineered Living Materials — R. Kōnane Bay, Jason A. Burdick, et al. · ACS Applied Polymer Materials (2026) | TGRS Research Map | TGRS