Stanford Genome Technology Center, Stanford University School of Medicine, Palo Alto, CA 94304, USA.
Department of Chemical and Biomolecular Engineering, University of California, Los Angeles, CA 90095, USA.
Sci Adv. 2018 Apr 11;4(4):eaar5459. doi: 10.1126/sciadv.aar5459. eCollection 2018 Apr.
For decades, fungi have been a source of U.S. Food and Drug Administration-approved natural products such as penicillin, cyclosporine, and the statins. Recent breakthroughs in DNA sequencing suggest that millions of fungal species exist on Earth, with each genome encoding pathways capable of generating as many as dozens of natural products. However, the majority of encoded molecules are difficult or impossible to access because the organisms are uncultivable or the genes are transcriptionally silent. To overcome this bottleneck in natural product discovery, we developed the HEx (Heterologous EXpression) synthetic biology platform for rapid, scalable expression of fungal biosynthetic genes and their encoded metabolites in . We applied this platform to 41 fungal biosynthetic gene clusters from diverse fungal species from around the world, 22 of which produced detectable compounds. These included novel compounds with unexpected biosynthetic origins, particularly from poorly studied species. This result establishes the HEx platform for rapid discovery of natural products from any fungal species, even those that are uncultivable, and opens the door to discovery of the next generation of natural products.
几十年来,真菌一直是美国食品和药物管理局批准的天然产物的来源,如青霉素、环孢菌素和他汀类药物。最近 DNA 测序方面的突破表明,地球上存在数以百万计的真菌物种,每个基因组都编码有能力生成多达数十种天然产物的途径。然而,由于生物体无法培养或基因转录沉默,大多数编码分子难以或无法获得。为了克服天然产物发现中的这一瓶颈,我们开发了 HEx(异源表达)合成生物学平台,用于在. 中快速、可扩展地表达真菌生物合成基因及其编码的代谢物。我们将该平台应用于来自世界各地的 41 个真菌生物合成基因簇,其中 22 个产生了可检测的化合物。其中包括具有意想不到生物合成来源的新型化合物,特别是来自研究较少的物种。这一结果确立了 HEx 平台可用于快速发现任何真菌物种的天然产物,即使是那些无法培养的物种,并为发现下一代天然产物打开了大门。