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用于挖掘新型次级代谢产物生物合成基因簇的 30 个完整链霉菌基因组序列。

Thirty complete Streptomyces genome sequences for mining novel secondary metabolite biosynthetic gene clusters.

机构信息

Department of Biological Sciences and KI for the BioCentury, Korea Advanced Institute of Science and Technology, Daejeon, 34141, Republic of Korea.

Department of Bioengineering, University of California San Diego, La Jolla, CA, 92093, USA.

出版信息

Sci Data. 2020 Feb 13;7(1):55. doi: 10.1038/s41597-020-0395-9.

Abstract

Streptomyces are Gram-positive bacteria of significant industrial importance due to their ability to produce a wide range of antibiotics and bioactive secondary metabolites. Recent advances in genome mining have revealed that Streptomyces genomes possess a large number of unexplored silent secondary metabolite biosynthetic gene clusters (smBGCs). This indicates that Streptomyces genomes continue to be an invaluable source for new drug discovery. Here, we present high-quality genome sequences of 22 Streptomyces species and eight different Streptomyces venezuelae strains assembled by a hybrid strategy exploiting both long-read and short-read genome sequencing methods. The assembled genomes have more than 97.4% gene space completeness and total lengths ranging from 6.7 to 10.1 Mbp. Their annotation identified 7,000 protein coding genes, 20 rRNAs, and 68 tRNAs on average. In silico prediction of smBGCs identified a total of 922 clusters, including many clusters whose products are unknown. We anticipate that the availability of these genomes will accelerate discovery of novel secondary metabolites from Streptomyces and elucidate complex smBGC regulation.

摘要

链霉菌是革兰氏阳性细菌,具有重要的工业意义,因为它们能够产生广泛的抗生素和生物活性次级代谢物。最近的基因组挖掘进展表明,链霉菌基因组拥有大量未开发的沉默次级代谢物生物合成基因簇(smBGCs)。这表明链霉菌基因组仍然是新药发现的宝贵资源。在这里,我们展示了 22 个链霉菌物种和 8 个不同的委内瑞拉链霉菌菌株的高质量基因组序列,这些序列是通过利用长读长和短读长基因组测序方法的混合策略组装而成的。组装的基因组具有超过 97.4%的基因空间完整性,总长度从 6.7 到 10.1 Mbp 不等。它们的注释平均识别了 7000 个蛋白质编码基因、20 个 rRNA 和 68 个 tRNA。次级代谢产物生物合成基因簇的计算机预测总共鉴定了 922 个簇,其中包括许多其产物未知的簇。我们预计这些基因组的可用性将加速从链霉菌中发现新型次级代谢产物,并阐明复杂的 smBGC 调控。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f43b/7018776/c913b5c45808/41597_2020_395_Fig1_HTML.jpg

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