Department of Chemical and Biological Engineering, Chalmers University of Technology, Gothenburg, Sweden.
Biotechnol J. 2011 Mar;6(3):262-76. doi: 10.1002/biot.201000308. Epub 2011 Feb 16.
Constant progress in genetic engineering has given rise to a number of promising areas of research that facilitated the expansion of industrial biotechnology. The field of metabolic engineering, which utilizes genetic tools to manipulate microbial metabolism to enhance the production of compounds of interest, has had a particularly strong impact by providing new platforms for chemical production. Recent developments in synthetic biology promise to expand the metabolic engineering toolbox further by creating novel biological components for pathway design. The present review addresses some of the recent advances in synthetic biology and how these have the potential to affect metabolic engineering in the yeast Saccharomyces cerevisiae. While S. cerevisiae for years has been a robust industrial organism and the target of multiple metabolic engineering trials, its potential for synthetic biology has remained relatively unexplored and further research in this field could strongly contribute to industrial biotechnology. This review also addresses are general considerations for pathway design, ranging from individual components to regulatory systems, overall pathway considerations and whole-organism engineering, with an emphasis on potential contributions of synthetic biology to these areas. Some examples of applications for yeast synthetic biology and metabolic engineering are also discussed.
遗传工程的不断进步催生了许多有前途的研究领域,这些领域促进了工业生物技术的发展。代谢工程领域利用遗传工具来操纵微生物代谢以提高目标化合物的产量,它为化学生产提供了新的平台,因此产生了特别强烈的影响。合成生物学的最新发展有望通过为途径设计创造新的生物组件进一步扩展代谢工程工具包。本综述介绍了合成生物学的一些最新进展,以及这些进展如何有可能影响酵母酿酒酵母的代谢工程。虽然酿酒酵母多年来一直是一种强大的工业生物,也是多次代谢工程试验的目标,但它在合成生物学方面的潜力仍未得到充分探索,这一领域的进一步研究可能会为工业生物技术做出强有力的贡献。本文还讨论了途径设计的一般考虑因素,包括从单个组件到调控系统、整体途径考虑因素和整个生物体工程,重点介绍了合成生物学在这些领域的潜在贡献。还讨论了一些酵母合成生物学和代谢工程的应用实例。