Chen Zhu, Wan Caixia
Department of Bioengineering, University of Missouri, Columbia, MO, 65211, USA.
Biotechnol Lett. 2017 Dec;39(12):1765-1777. doi: 10.1007/s10529-017-2429-8. Epub 2017 Sep 13.
Heavy reliance on petroleum-based products drives continuous exploitation of fossil fuels, and results in serious environmental and climate problems. To address such an issue, there is a shift from petroleum sources to renewable ones. Biochemical conversion via fermentation is a primary platform for converting renewable sources to biofuels and bulk chemicals. In order to provide cost-competitive alternatives, it is imperative to develop efficient, cost-saving, and robust fermentation processes. Non-sterile fermentation offers several benefits compared to sterile fermentation, including elimination of sterility, reduced maintenance requirements, relatively simple bioreactor design, and simplified operation. Thus, cost effectiveness of non-sterile fermentation makes it a practical platform for low cost, large volume production of biofuels and bulk chemicals. Many approaches have been developed to conduct non-sterile fermentation without sacrificing the yields and productivities of fermentation products. This review focuses on the strategies for conducting non-sterile fermentation. The challenges facing non-sterile fermentation are also discussed.
对石油基产品的严重依赖推动了对化石燃料的持续开采,并导致了严重的环境和气候问题。为了解决这一问题,正从石油来源转向可再生来源。通过发酵进行的生化转化是将可再生资源转化为生物燃料和大宗化学品的主要平台。为了提供具有成本竞争力的替代方案,开发高效、节省成本且稳健的发酵工艺势在必行。与无菌发酵相比,非无菌发酵具有诸多优势,包括无需无菌条件、维护要求降低、生物反应器设计相对简单以及操作简化。因此,非无菌发酵的成本效益使其成为低成本、大规模生产生物燃料和大宗化学品的实用平台。已经开发出许多方法来进行非无菌发酵,同时又不牺牲发酵产物的产量和生产率。本综述重点关注进行非无菌发酵的策略。还讨论了非无菌发酵面临的挑战。