Ye Lidan, Lv Xiaomei, Yu Hongwei
Institute of Bioengineering, College of Chemical and Biological Engineering, Zhejiang University, 310027 Hangzhou, PR China; Key Laboratory of Biomass Chemical Engineering of Ministry of Education, Zhejiang University, Hangzhou 310027, PR China.
Institute of Bioengineering, College of Chemical and Biological Engineering, Zhejiang University, 310027 Hangzhou, PR China.
Metab Eng. 2016 Nov;38:125-138. doi: 10.1016/j.ymben.2016.07.005. Epub 2016 Jul 14.
Isoprene is facing a growing global market due to its wide industrial applications. Current industrial production of isoprene is almost entirely petroleum-based, which is influenced by the shrinking C5 supply, while the natural emission of isoprene is predominantly contributed by plants. To bridge the need gap, a highly efficient fermentation-based process for isoprene production might be a suitable and sustainable solution, and extensive research works have been performed to achieve this goal. Here we review the accomplishments in this field by summarizing the history and prospects of microbial isoprene production. The natural producers and biosynthesis pathways of isoprene, the key enzyme isoprene synthase and the metabolic engineering strategies adopted for developing isoprene-producing microorganisms are introduced. In particular, strategies employed for achieving engineered strains with improved performance indices are discussed based on the published papers and patents. The perspectives on further performance improvements and potential future strategies are presented as well.
由于异戊二烯广泛的工业应用,其全球市场正在不断扩大。目前异戊二烯的工业生产几乎完全基于石油,这受到C5供应萎缩的影响,而异戊二烯的自然排放主要来自植物。为了弥合需求差距,一种高效的基于发酵的异戊二烯生产工艺可能是一个合适且可持续的解决方案,并且已经开展了大量研究工作来实现这一目标。在此,我们通过总结微生物生产异戊二烯的历史和前景,回顾该领域的成就。介绍了异戊二烯的天然生产者和生物合成途径、关键酶异戊二烯合酶以及用于开发产异戊二烯微生物的代谢工程策略。特别是,基于已发表的论文和专利,讨论了用于获得性能指标得到改善的工程菌株的策略。还提出了关于进一步提高性能的观点以及潜在的未来策略。