Toward Practical Applications of Engineered Living Materials with Advanced Fabrication Techniques.

ACS Synth Biol

Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210093, China.

Published: August 2024

AI Article Synopsis

  • Engineered Living Materials (ELMs) are innovative materials that incorporate living cells, allowing them to respond dynamically to environmental changes and exhibit unique properties like self-healing and adaptability.
  • They can be produced through bottom-up processes (where cells form aggregates) or top-down methods (merging cells with various materials), merging concepts from synthetic biology and materials science.
  • The review discusses the significant advancements in ELMs, particularly in healthcare and environmental protection, while highlighting current preparation techniques and the research needed to improve their functionality and safety for practical use.

Article Abstract

Engineered Living Materials (ELMs) are materials composed of or incorporating living cells as essential functional units. These materials can be created using bottom-up approaches, where engineered cells spontaneously form well-defined aggregates. Alternatively, top-down methods employ advanced materials science techniques to integrate cells with various kinds of materials, creating hybrids where cells and materials are intricately combined. ELMs blend synthetic biology with materials science, allowing for dynamic responses to environmental stimuli such as stress, pH, humidity, temperature, and light. These materials exhibit unique "living" properties, including self-healing, self-replication, and environmental adaptability, making them highly suitable for a wide range of applications in medicine, environmental conservation, and manufacturing. Their inherent biocompatibility and ability to undergo genetic modifications allow for customized functionalities and prolonged sustainability. This review highlights the transformative impact of ELMs over recent decades, particularly in healthcare and environmental protection. We discuss current preparation methods, including the use of endogenous and exogenous scaffolds, living assembly, 3D bioprinting, and electrospinning. Emphasis is placed on ongoing research and technological advancements necessary to enhance the safety, functionality, and practical applicability of ELMs in real-world contexts.

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http://dx.doi.org/10.1021/acssynbio.4c00259DOI Listing

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