FORM INTO FUNCTION: 3D-PRINTED CORE-SHELL DESIGNS ENGINEERED LIVING MATERIALS FOR ENHANCED BIOPRODUCTION, BIOPROTECTION, AND BIOCONTAINMENT

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Engineered Living Materials (ELMs), composite materials comprising of living microorganisms embedded within polymeric matrices, have emerged as programmable and self- sustaining platforms for deployment across industrial, environmental, and remote contexts. While ELMs hold promise for decentralized biomanufacturing, their real-world application is constrained by critical challenges such as scaling bioproduction, ensuring bioprotection of key organisms, and maintaining biocontainment for safe and controlled deployment. This thesis presents three design- focused developments toward deployable ELMs: the design of multi-kingdom ELMs leveraging artificial microbial symbiosis for enhanced bioproduction, the development of a physico-chemical core-shell biocontainment strategy utilizing enzyme-functionalized hydrogels, and the evaluation of hyperbranched polyglycerol (HPG) as a potential scaffold material for remote deployment applications in low-hydration environments. Together, these works establish a framework for ELM design approaches focused on transitioning deployment outside of classical laboratory settings, advancing ELMs as a compelling platform for distributed biomanufacturing at the frontier of a bio-hybrid future.

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Thesis (Ph.D.)--University of Washington, 2026

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