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Updated: Aug 21, 2026

Using Synthetic Biology to Engineer Living Cells That Interface with Programmable Materials
Published on: March 9, 2017
Programmable biofunctionalization of bacterial cellulose via a dynamic co-culture platform
Fei Liu1, Yanyi Wang2, Bin Cui3
1State Key Laboratory of Quantitative Synthetic Biology, Shenzhen Key Laboratory of Materials Synthetic Biology, Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China; School of Biomedical Engineering, Shenzhen Campus of Sun Yat-sen University, Shenzhen, Guangdong 518107, China.
None:
Programmable biofunctionalization of bacterial cellulose (BC) is promising for constructing engineered living materials, but current microbial co-culture approaches struggle to combine coherent matrix formation, dynamic cultivation, and efficient matrix-associated protein functionalization. In this study, we report a polydopamine (PDA)-mediated, surface-immobilized dynamic co-culture platform that pairs Komagataeibacter rhaeticus for BC production with engineered Pichia pastoris for recombinant protein secretion. PDA-mediated co-immobilization preserves conformal BC growth under agitation while maintaining the functional partner near the forming matrix. Cellulose-binding-domain fusion further retains secreted protein cargoes within the BC network, enabling localized functionalization. The template-guided strategy supports geometry control, construct-size scaling, and incorporation of multiple engineered yeast populations. Modular genetic payloads enable pollutant degradation and enzymatic cascade-based analyte detection. As an application-relevant demonstration, lysostaphin-functionalized BC hydrogels effectively controlled Staphylococcus aureus infection and accelerated wound closure in a diabetic murine model. This work establishes a functionally extensible framework for bioactive BC-based living materials.

