Macaulay Land Use Research Institute, Aberdeen, AB15 8QH, UK.
Trends Biotechnol. 2010 Mar;28(3):111-6. doi: 10.1016/j.tibtech.2009.11.006. Epub 2009 Dec 11.
Environmental microbes are immensely diverse and have numerous metabolic activities and products that could have industrial applications. However, >99% of environmental microbes cannot be cultured under current laboratory conditions, leaving their potential largely untapped. Metagenomic approaches have been used successfully in recent years to obtain novel microbial products from uncultured microorganisms. The activity, efficiency and stability of these novel enzymes can be further improved by the application of nanotechnology. Here, I highlight the approaches that can be used to obtain efficient microbial products from the uncultivable majority. I propose that a multidisciplinary approach combining different technologies including metagenomics and nanotechnology is the way forward for tapping the real potential of microbial metabolism for applications in biotechnology.
环境微生物具有极高的多样性,拥有众多可能应用于工业的代谢活动和产物。然而,目前在实验室条件下,仍有超过 99%的环境微生物无法被培养,这使得它们的潜在应用尚未得到充分开发。近年来,宏基因组学方法已成功应用于从未培养的微生物中获得新型微生物产物。通过纳米技术的应用,可以进一步提高这些新型酶的活性、效率和稳定性。在这里,我重点介绍了从无法培养的大多数微生物中获得高效微生物产物的方法。我提出,一种结合宏基因组学和纳米技术等多种技术的多学科方法,是挖掘微生物代谢在生物技术应用中的真正潜力的未来方向。