Università degli Studi di Milano, Dipartimento di Scienze e Tecnologie Alimentari e Microbiologiche, Via Celoria 2, 20133 Milano, Italy.
J Biotechnol. 2012 Feb 20;157(4):473-81. doi: 10.1016/j.jbiotec.2011.11.013. Epub 2011 Nov 26.
Mineral-microbe interaction has been a key factor shaping the lithosphere of our planet since the Precambrian. Detailed investigation has been mainly focused on the role of bioweathering in biomining processes, leading to the selection of highly efficient microbial inoculants for the recovery of metals. Here we expand this scenario, presenting additional applications of bacteria and fungi in mineral dissolution, a process with novel biotechnological potential that has been poorly investigated. The ability of microorganisms to trigger soil formation and to sustain plant establishment and growth are suggested as invaluable tools to counteract the expansion of arid lands and to increase crop productivity. Furthermore, interesting exploitations of mineral weathering microbes are represented by biorestoration and bioremediation technologies, innovative and competitive solutions characterized by economical and environmental advantages. Overall, in the future the study and application of the metabolic properties of microbial communities capable of weathering can represent a driving force in the expanding sector of environmental biotechnology.
自前寒武纪以来,矿物-微生物相互作用一直是塑造地球岩石圈的关键因素。详细的研究主要集中在生物风化在生物采矿过程中的作用,这导致了高效微生物接种剂的选择,用于回收金属。在这里,我们扩展了这一方案,提出了细菌和真菌在矿物溶解中的额外应用,这是一个具有新生物技术潜力但研究甚少的过程。微生物触发土壤形成以及维持植物定植和生长的能力被认为是对抗干旱土地扩张和提高作物生产力的宝贵工具。此外,微生物风化在生物修复和生物修复技术方面的有趣应用,是具有经济和环境优势的创新和有竞争力的解决方案。总的来说,未来对能够风化的微生物群落代谢特性的研究和应用,可能成为环境生物技术不断发展的推动力。