McArthur George H, Fong Stephen S
Department of Chemical and Life Science Engineering, Virginia Commonwealth University, 601 W. Main Street, Richmond, VA 23284-3028, USA.
J Biomed Biotechnol. 2010;2010:459760. doi: 10.1155/2010/459760. Epub 2009 Dec 14.
The generation of well-characterized parts and the formulation of biological design principles in synthetic biology are laying the foundation for more complex and advanced microbial metabolic engineering. Improvements in de novo DNA synthesis and codon-optimization alone are already contributing to the manufacturing of pathway enzymes with improved or novel function. Further development of analytical and computer-aided design tools should accelerate the forward engineering of precisely regulated synthetic pathways by providing a standard framework for the predictable design of biological systems from well-characterized parts. In this review we discuss the current state of synthetic biology within a four-stage framework (design, modeling, synthesis, analysis) and highlight areas requiring further advancement to facilitate true engineering of synthetic microbial metabolism.
在合成生物学中,对特征明确的元件的构建以及生物学设计原则的形成,正在为更复杂、更先进的微生物代谢工程奠定基础。仅从头DNA合成和密码子优化方面的改进,就已经有助于制造具有改进功能或新功能的途径酶。分析和计算机辅助设计工具的进一步发展,应通过为从特征明确的元件进行生物系统的可预测设计提供标准框架,来加速精确调控的合成途径的正向工程。在本综述中,我们在一个四阶段框架(设计、建模、合成、分析)内讨论合成生物学的当前状态,并强调需要进一步推进的领域,以促进合成微生物代谢的真正工程化。