Graduate Program in Applied Physics, Rice University, Houston, TX 77005, United States.
Curr Opin Chem Biol. 2012 Aug;16(3-4):300-6. doi: 10.1016/j.cbpa.2012.06.003. Epub 2012 Jul 4.
Synthetic biology is improving our understanding of and ability to control living organisms. To date, most progress has been made by engineering gene expression. However, computational and genetically encoded tools that allow protein activity and protein-protein interactions to be controlled on their natural time and length scales are emerging. These technologies provide a basis for the construction of post-translational circuits, which are capable of fast, robust and highly spatially resolved signal processing. When combined with their transcriptional and translational counterparts, synthetic post-translational circuits will allow better analysis and control of otherwise intractable biological processes such as cellular differentiation and the growth of tissues.
合成生物学正在增进我们对生物的理解和控制能力。迄今为止,大多数进展都是通过工程基因表达来实现的。然而,能够在自然时间和长度尺度上控制蛋白质活性和蛋白质-蛋白质相互作用的计算和遗传编码工具正在出现。这些技术为构建翻译后电路提供了基础,这些电路能够实现快速、稳健和高度空间分辨的信号处理。当与转录和翻译的对应物结合使用时,合成翻译后电路将允许更好地分析和控制其他难以处理的生物过程,如细胞分化和组织生长。