Kummetha Likhitha Reddy, Oh Jeong-Joo, van der Linden Franka H, Aubin-Tam Marie-Eve
Department of Bionanoscience, Kavli Institute of Nanoscience, Delft University of Technology, Van der Maasweg 9, Delft 2629, HZ, the Netherlands.
Department of Bionanoscience, Kavli Institute of Nanoscience, Delft University of Technology, Van der Maasweg 9, Delft 2629, HZ, the Netherlands.
Trends Biotechnol. 2025 Apr;43(4):812-825. doi: 10.1016/j.tibtech.2024.09.018. Epub 2024 Oct 29.
Inspired by biological functions of living systems, researchers have engineered cells as independent functional materials or integrated them within a natural or synthetic matrix to create engineered living materials (ELMs). However, the 'livingness' of cells in such materials poses serious drawbacks, such as a short lifespan and the need for cold-chain logistics. Bacterial spores have emerged as a game changer to bypass these shortcomings as a result of their intrinsic dormancy and resistance against harsh conditions. Emerging synthetic biology tools tailored for engineering spores and better understanding of their physical properties have led to novel applications of spore-based materials. Here, we review recent advances in such materials and discuss future challenges for the development of time- and cost-efficient spore-based materials with high performance.
受生命系统生物学功能的启发,研究人员已将细胞设计成独立的功能材料,或将它们整合到天然或合成基质中,以制造工程化活材料(ELM)。然而,此类材料中细胞的“活性”存在严重缺陷,比如寿命短以及需要冷链物流。细菌孢子由于其固有的休眠特性和对恶劣条件的抗性,已成为克服这些缺点的关键因素。为工程化改造孢子量身定制的新兴合成生物学工具以及对其物理性质的深入理解,催生了基于孢子材料的新应用。在此,我们综述此类材料的最新进展,并讨论开发高性能、省时且经济高效的基于孢子材料所面临的未来挑战。