The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, 2800, Kongens Lyngby, Denmark.
Department of Chemical and Biomolecular Engineering (BK21 Plus Program), Korea Advanced Institute of Science and Technology (KAIST), Yuseong-gu, Daejeon, 306-701, Republic of Korea.
Biotechnol J. 2018 Jan;13(1). doi: 10.1002/biot.201700465. Epub 2017 Nov 13.
Streptomycetes are known for their inherent ability to produce pharmaceutically relevant secondary metabolites. Discovery of medically useful, yet novel compounds has become a great challenge due to frequent rediscovery of known compounds and a consequent decline in the number of relevant clinical trials in the last decades. A paradigm shift took place when the first whole genome sequences of streptomycetes became available, from which silent or "cryptic" biosynthetic gene clusters (BGCs) were discovered. Cryptic BGCs reveal a so far untapped potential of the microorganisms for the production of novel compounds, which has spurred new efforts in understanding the complex regulation between primary and secondary metabolism. This new trend has been accompanied with development of new computational resources (genome and compound mining tools), generation of various high-quality omics data, establishment of molecular tools, and other strain engineering strategies. They all come together to enable systems metabolic engineering of streptomycetes, allowing more systematic and efficient strain development. In this review, the authors present recent progresses within systems metabolic engineering of streptomycetes for uncovering their hidden potential to produce novel compounds and for the improved production of secondary metabolites.
链霉菌以其产生具有药用相关性的次生代谢产物的固有能力而闻名。由于经常发现已知化合物,并且过去几十年中相关临床试验的数量减少,因此发现具有医学用途但新颖的化合物已成为一项巨大的挑战。当首次获得链霉菌的全基因组序列时,发生了范式转变,从中发现了沉默或“隐匿”的生物合成基因簇(BGC)。隐匿 BGC 揭示了微生物在产生新型化合物方面迄今为止尚未开发的潜力,这激发了人们为理解初级代谢和次级代谢之间的复杂调节而进行新的努力。这一新兴趋势伴随着新的计算资源(基因组和化合物挖掘工具)的开发、各种高质量组学数据的产生、分子工具的建立以及其他菌株工程策略的发展。所有这些都共同促进了链霉菌的系统代谢工程,从而能够更系统、更有效地进行菌株开发。在本文中,作者介绍了链霉菌系统代谢工程的最新进展,这些进展揭示了其产生新型化合物和提高次生代谢产物产量的潜在能力。