Gumulya Yosephine, Boxall Naomi J, Khaleque Himel N, Santala Ville, Carlson Ross P, Kaksonen Anna H
Commonwealth Scientific and Industrial Research Organisation (CSIRO), Floreat WA 6014, Australia.
Laboratory of Chemistry and Bioengineering, Tampere University of Technology (TUT), Tampere, 33101, Finland.
Genes (Basel). 2018 Feb 21;9(2):116. doi: 10.3390/genes9020116.
Biomining with acidophilic microorganisms has been used at commercial scale for the extraction of metals from various sulfide ores. With metal demand and energy prices on the rise and the concurrent decline in quality and availability of mineral resources, there is an increasing interest in applying biomining technology, in particular for leaching metals from low grade minerals and wastes. However, bioprocessing is often hampered by the presence of inhibitory compounds that originate from complex ores. Synthetic biology could provide tools to improve the tolerance of biomining microbes to various stress factors that are present in biomining environments, which would ultimately increase bioleaching efficiency. This paper reviews the state-of-the-art tools to genetically modify acidophilic biomining microorganisms and the limitations of these tools. The first part of this review discusses resilience pathways that can be engineered in acidophiles to enhance their robustness and tolerance in harsh environments that prevail in bioleaching. The second part of the paper reviews the efforts that have been carried out towards engineering robust microorganisms and developing metabolic modelling tools. Novel synthetic biology tools have the potential to transform the biomining industry and facilitate the extraction of value from ores and wastes that cannot be processed with existing biomining microorganisms.
利用嗜酸微生物进行生物采矿已在商业规模上用于从各种硫化矿石中提取金属。随着金属需求和能源价格的上涨,以及矿产资源质量和可获取性的同时下降,人们对应用生物采矿技术的兴趣日益浓厚,特别是用于从低品位矿物和废物中浸出金属。然而,生物处理常常受到复杂矿石中存在的抑制性化合物的阻碍。合成生物学可以提供工具,以提高生物采矿微生物对生物采矿环境中存在的各种压力因素的耐受性,这最终将提高生物浸出效率。本文综述了对嗜酸生物采矿微生物进行基因改造的最新工具以及这些工具的局限性。本综述的第一部分讨论了可以在嗜酸菌中设计的抗性途径,以增强它们在生物浸出中普遍存在的恶劣环境中的稳健性和耐受性。本文的第二部分综述了在工程化稳健微生物和开发代谢建模工具方面所做的努力。新型合成生物学工具有可能改变生物采矿行业,并促进从现有生物采矿微生物无法处理的矿石和废物中提取价值。