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蓝藻的合成生物学:独特的挑战与机遇。

Synthetic biology of cyanobacteria: unique challenges and opportunities.

机构信息

Department of Energy, Environmental, and Chemical Engineering, Washington University St. Louis, MO, USA.

出版信息

Front Microbiol. 2013 Aug 27;4:246. doi: 10.3389/fmicb.2013.00246. eCollection 2013.

Abstract

Photosynthetic organisms, and especially cyanobacteria, hold great promise as sources of renewably-produced fuels, bulk and specialty chemicals, and nutritional products. Synthetic biology tools can help unlock cyanobacteria's potential for these functions, but unfortunately tool development for these organisms has lagged behind that for S. cerevisiae and E. coli. While these organisms may in many cases be more difficult to work with as "chassis" strains for synthetic biology than certain heterotrophs, the unique advantages of autotrophs in biotechnology applications as well as the scientific importance of improved understanding of photosynthesis warrant the development of these systems into something akin to a "green E. coli." In this review, we highlight unique challenges and opportunities for development of synthetic biology approaches in cyanobacteria. We review classical and recently developed methods for constructing targeted mutants in various cyanobacterial strains, and offer perspective on what genetic tools might most greatly expand the ability to engineer new functions in such strains. Similarly, we review what genetic parts are most needed for the development of cyanobacterial synthetic biology. Finally, we highlight recent methods to construct genome-scale models of cyanobacterial metabolism and to use those models to measure properties of autotrophic metabolism. Throughout this paper, we discuss some of the unique challenges of a diurnal, autotrophic lifestyle along with how the development of synthetic biology and biotechnology in cyanobacteria must fit within those constraints.

摘要

光合生物,尤其是蓝藻,作为可再生燃料、大宗和特种化学品以及营养产品的来源具有巨大的潜力。合成生物学工具可以帮助挖掘蓝藻在这些功能上的潜力,但不幸的是,这些工具的开发落后于酿酒酵母和大肠杆菌。虽然在许多情况下,这些生物体作为合成生物学的“底盘”菌株可能比某些异养生物更难处理,但自养生物在生物技术应用中的独特优势以及对光合作用的深入理解的科学重要性都证明了开发这些系统类似于“绿色大肠杆菌”是必要的。在这篇综述中,我们强调了在蓝藻中开发合成生物学方法的独特挑战和机遇。我们回顾了在各种蓝藻菌株中构建靶向突变体的经典和最近开发的方法,并就哪些遗传工具最有可能极大地扩展在这些菌株中工程新功能的能力提供了一些看法。同样,我们还回顾了开发蓝藻合成生物学最需要的遗传元件。最后,我们强调了构建蓝藻代谢的基因组规模模型的最新方法,并使用这些模型来测量自养代谢的特性。在整篇论文中,我们讨论了昼夜、自养生活方式的一些独特挑战,以及蓝藻中的合成生物学和生物技术的发展必须如何适应这些限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52cb/3755261/688806cc75da/fmicb-04-00246-g0001.jpg

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