Fabris Michele, Abbriano Raffaela M, Pernice Mathieu, Sutherland Donna L, Commault Audrey S, Hall Christopher C, Labeeuw Leen, McCauley Janice I, Kuzhiuparambil Unnikrishnan, Ray Parijat, Kahlke Tim, Ralph Peter J
Climate Change Cluster (C3), University of Technology Sydney, Ultimo, NSW, Australia.
CSIRO Synthetic Biology Future Science Platform, Brisbane, QLD, Australia.
Front Plant Sci. 2020 Mar 17;11:279. doi: 10.3389/fpls.2020.00279. eCollection 2020.
Mankind has recognized the value of land plants as renewable sources of food, medicine, and materials for millennia. Throughout human history, agricultural methods were continuously modified and improved to meet the changing needs of civilization. Today, our rapidly growing population requires further innovation to address the practical limitations and serious environmental concerns associated with current industrial and agricultural practices. Microalgae are a diverse group of unicellular photosynthetic organisms that are emerging as next-generation resources with the potential to address urgent industrial and agricultural demands. The extensive biological diversity of algae can be leveraged to produce a wealth of valuable bioproducts, either naturally or via genetic manipulation. Microalgae additionally possess a set of intrinsic advantages, such as low production costs, no requirement for arable land, and the capacity to grow rapidly in both large-scale outdoor systems and scalable, fully contained photobioreactors. Here, we review technical advancements, novel fields of application, and products in the field of algal biotechnology to illustrate how algae could present high-tech, low-cost, and environmentally friendly solutions to many current and future needs of our society. We discuss how emerging technologies such as synthetic biology, high-throughput phenomics, and the application of internet of things (IoT) automation to algal manufacturing technology can advance the understanding of algal biology and, ultimately, drive the establishment of an algal-based bioeconomy.
几千年来,人类一直认识到陆地植物作为食物、药物和材料的可再生来源的价值。在人类历史进程中,农业方法不断得到改进和完善,以满足文明发展不断变化的需求。如今,快速增长的人口需要进一步创新,以解决当前工农业生产实践中的实际限制和严重的环境问题。微藻是一类多样的单细胞光合生物,正作为有潜力满足工农业迫切需求的下一代资源而崭露头角。藻类广泛的生物多样性可被利用,通过自然方式或基因操作来生产大量有价值的生物产品。微藻还具有一系列内在优势,如生产成本低、无需耕地,并且能够在大规模室外系统和可扩展的全封闭光生物反应器中快速生长。在此,我们综述藻类生物技术领域的技术进步、新的应用领域和产品,以说明藻类如何为我们社会当前和未来的许多需求提供高科技、低成本且环保的解决方案。我们讨论诸如合成生物学、高通量表型组学以及物联网自动化在藻类制造技术中的应用等新兴技术如何能够增进对藻类生物学的理解,并最终推动基于藻类的生物经济的建立。