Goodchild-Michelman Isabella M, Church George M, Schubert Max G, Tang Tzu-Chieh
Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA, USA.
Department of Genetics, Harvard Medical School, Boston, MA, USA.
Mater Today Bio. 2023 Feb 11;19:100583. doi: 10.1016/j.mtbio.2023.100583. eCollection 2023 Apr.
Cyanobacteria are ideal candidates to use in developing carbon neutral and carbon negative technologies; they are efficient photosynthesizers and amenable to genetic manipulation. Over the past two decades, researchers have demonstrated that cyanobacteria can make sustainable, useful biomaterials, many of which are engineered living materials. However, we are only beginning to see such technologies applied at an industrial scale. In this review, we explore the ways in which synthetic biology tools enable the development of cyanobacteria-based biomaterials. First we give an overview of the ecological and biogeochemical importance of cyanobacteria and the work that has been done using cyanobacteria to create biomaterials so far. This is followed by a discussion of commonly used cyanobacteria strains and synthetic biology tools that exist to engineer cyanobacteria. Then, three case studies-bioconcrete, biocomposites, and biophotovoltaics-are explored as potential applications of synthetic biology in cyanobacteria-based materials. Finally, challenges and future directions of cyanobacterial biomaterials are discussed.
蓝细菌是用于开发碳中和和碳负性技术的理想候选者;它们是高效的光合作用者,并且易于进行基因操作。在过去二十年中,研究人员已经证明蓝细菌可以制造可持续的、有用的生物材料,其中许多是工程活材料。然而,我们才刚刚开始看到此类技术在工业规模上的应用。在这篇综述中,我们探讨了合成生物学工具促进基于蓝细菌的生物材料开发的方式。首先,我们概述了蓝细菌在生态和生物地球化学方面的重要性,以及迄今为止利用蓝细菌制造生物材料所开展的工作。接下来讨论了用于改造蓝细菌的常用蓝细菌菌株和合成生物学工具。然后,探讨了生物混凝土、生物复合材料和生物光伏这三个案例研究,作为合成生物学在基于蓝细菌的材料中的潜在应用。最后,讨论了蓝细菌生物材料面临的挑战和未来发展方向。