Michalodimitrakis Konstantinos, Isalan Mark
EMBL/CRG Systems Biology Research Unit, Centre for Genomic Regulation (CRG), UPF, Barcelona, Spain.
FEMS Microbiol Rev. 2009 Jan;33(1):27-37. doi: 10.1111/j.1574-6976.2008.00139.x. Epub 2008 Nov 4.
Engineering of synthetic gene circuits is a rapidly growing discipline, currently dominated by prokaryotic transcription networks, which can be easily rearranged or rewired to give different output behaviours. In this review, we examine both a rational and a combinatorial design of such networks and discuss progress on using in vitro evolution techniques to obtain functional systems. Moving beyond pure transcription networks, more and more networks are being implemented at the level of RNA, taking advantage of mechanisms of translational control and aptamer-small molecule complex formation. Unlike gene expression systems, metabolic components are generally not as interconnectable in any combination, and so engineering of metabolic circuits is a particularly challenging field. Nonetheless, metabolic engineering has immense potential to provide useful biosynthesis tools for biotechnology applications. Finally, although prokaryotes are mostly studied as single cell systems, cell-cell communication networks are now being developed that result in spatial pattern formation in multicellular prokaryote colonies. This represents a crossover with multicellular organisms, showing that prokaryotic systems have the potential to tackle questions traditionally associated with developmental biology. Overall, the current advances in synthetic gene synthesis, ultra-high-throughput DNA sequencing and computation are synergizing to drive synthetic gene network design at an unprecedented pace.
合成基因电路工程是一个快速发展的学科,目前主要由原核转录网络主导,这些网络可以很容易地重新排列或重新布线以产生不同的输出行为。在这篇综述中,我们研究了此类网络的理性设计和组合设计,并讨论了利用体外进化技术获得功能系统的进展。除了纯转录网络之外,越来越多的网络正在RNA水平上实现,利用了翻译控制机制和适体-小分子复合物形成。与基因表达系统不同,代谢成分通常不能以任何组合方式相互连接,因此代谢电路工程是一个特别具有挑战性的领域。尽管如此,代谢工程在为生物技术应用提供有用的生物合成工具方面具有巨大潜力。最后,虽然原核生物大多作为单细胞系统进行研究,但现在正在开发细胞间通信网络,这些网络会导致多细胞原核生物菌落中形成空间模式。这代表了与多细胞生物的交叉,表明原核生物系统有潜力解决传统上与发育生物学相关的问题。总体而言,合成基因合成、超高通量DNA测序和计算方面的当前进展正在协同作用,以前所未有的速度推动合成基因网络设计。