Department of Earth Sciences, University of Oxford, Oxford, UK.
Microb Biotechnol. 2023 Sep;16(9):1713-1722. doi: 10.1111/1751-7915.14298. Epub 2023 Jul 31.
Biomineralization, the capacity to form minerals, has evolved in a great diversity of bacterial lineages as an adaptation to different environmental conditions and biological functions. Microbial biominerals often display original properties (morphology, composition, structure, association with organics) that significantly differ from those of abiotically formed counterparts, altogether defining the 'mineral phenotype'. In principle, it should be possible to take advantage of microbial biomineralization processes to design and biomanufacture advanced mineral materials for a range of technological applications. In practice, this has rarely been done so far and only for a very limited number of biomineral types. This is mainly due to our poor understanding of the underlying molecular mechanisms controlling microbial biomineralization pathways, preventing us from developing bioengineering strategies aiming at improving biomineral properties for different applications. Another important challenge is the difficulty to upscale microbial biomineralization from the lab to industrial production. Addressing these challenges will require combining expertise from environmental microbiologists and geomicrobiologists, who have historically been working at the forefront of research on microbe-mineral interactions, alongside bioengineers and material scientists. Such interdisciplinary efforts may in the future allow the emergence of a mineral biomanufacturing industry, a critical tool towards the development more sustainable and circular bioeconomies.
生物矿化作用,即形成矿物质的能力,在众多细菌谱系中进化,以适应不同的环境条件和生物功能。微生物矿化产物通常具有独特的性质(形态、组成、结构、与有机物的结合),与非生物形成的对应物有很大的不同,共同定义了“矿物表型”。原则上,应该可以利用微生物矿化作用来设计和生物制造先进的矿物材料,以满足各种技术应用的需求。然而,在实践中,迄今为止这种情况很少发生,而且仅限于非常有限的几种生物矿化类型。这主要是由于我们对控制微生物矿化途径的基本分子机制了解不足,阻碍了我们开发旨在改善不同应用的生物矿化特性的生物工程策略。另一个重要的挑战是,微生物矿化作用从实验室规模扩大到工业生产的难度。解决这些挑战需要结合环境微生物学家和地质微生物学家的专业知识,他们在研究微生物-矿物相互作用方面一直处于前沿,同时还需要生物工程师和材料科学家的参与。这种跨学科的努力可能会在未来为矿物生物制造产业的出现铺平道路,这是发展更可持续和循环生物经济的关键工具。