State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, College of Life Science and Technology, Guangxi University, 100 Daxue Road, Nanning, Guangxi, 530004, People's Republic of China.
Sci Rep. 2017 Mar 28;7(1):490. doi: 10.1038/s41598-017-00567-0.
Species from the genus Talaromyces produce useful biomass-degrading enzymes and secondary metabolites. However, these enzymes and secondary metabolites are still poorly understood and have not been explored in depth because of a lack of comprehensive genetic information. Here, we report a 36.51-megabase genome assembly of Talaromyces pinophilus strain 1-95, with coverage of nine scaffolds of eight chromosomes with telomeric repeats at their ends and circular mitochondrial DNA. In total, 13,472 protein-coding genes were predicted. Of these, 803 were annotated to encode enzymes that act on carbohydrates, including 39 cellulose-degrading and 24 starch-degrading enzymes. In addition, 68 secondary metabolism gene clusters were identified, mainly including T1 polyketide synthase genes and nonribosomal peptide synthase genes. Comparative genomic analyses revealed that T. pinophilus 1-95 harbors more biomass-degrading enzymes and secondary metabolites than other related filamentous fungi. The prediction of the T. pinophilus 1-95 secretome indicated that approximately 50% of the biomass-degrading enzymes are secreted into the extracellular environment. These results expanded our genetic knowledge of the biomass-degrading enzyme system of T. pinophilus and its biosynthesis of secondary metabolites, facilitating the cultivation of T. pinophilus for high production of useful products.
塔宾曲霉属的物种产生有用的生物量降解酶和次生代谢物。然而,由于缺乏全面的遗传信息,这些酶和次生代谢物仍然知之甚少,尚未进行深入探索。在这里,我们报告了塔宾曲霉菌株 1-95 的 36.51 兆碱基基因组组装,其中包括九个支架的覆盖,这八个支架的末端有端粒重复,还有圆形的线粒体 DNA。总共预测了 13472 个编码蛋白的基因。其中,803 个被注释为编码作用于碳水化合物的酶,包括 39 种纤维素降解酶和 24 种淀粉降解酶。此外,还鉴定了 68 个次级代谢基因簇,主要包括 T1 聚酮合酶基因和非核糖体肽合酶基因。比较基因组分析表明,T. pinophilus 1-95 比其他相关丝状真菌拥有更多的生物量降解酶和次生代谢物。对 T. pinophilus 1-95 分泌组的预测表明,大约 50%的生物量降解酶分泌到细胞外环境中。这些结果扩展了我们对塔宾曲霉生物量降解酶系统及其次生代谢物生物合成的遗传知识,有助于培养塔宾曲霉以高产有用产物。