Schafhauser Thomas, Wibberg Daniel, Binder Antonia, Rückert Christian, Busche Tobias, Wohlleben Wolfgang, Kalinowski Jörn
Mikrobiologie und Biotechnologie, Interfakultäres Institut für Mikrobiologie und Infektionsmedizin, Eberhard Karls Universität Tübingen, Auf der Morgenstelle 28, 72076 Tuebingen, Germany.
Centrum für Biotechnologie, CeBiTec, Universität Bielefeld, Universitätsstr. 27, 33615 Bielefeld, Germany.
J Fungi (Basel). 2022 Aug 16;8(8):862. doi: 10.3390/jof8080862.
The gilled mushroom (Entolomataceae, Agaricales, Basidiomycota) is well known to produce the terpenoid pleuromutilin, which is the biotechnological basis for medically important antibiotics such as lefamulin and retapamulin. Their unique mode of action and good tolerance entails an increasing demand of pleuromutilin-derived antibiotics in veterinary and human health care. Surprisingly, despite their pharmaceutical importance, no genome sequence is available of any pleuromutilin-producing fungus. Here, we present the high-quality draft genome sequence of the pleuromutilin-producer DSM1602 including functional genome annotation. More precisely, we employed a hybrid assembly strategy combining Illumina sequencing and Nanopore sequencing to assemble the mitochondrial genome as well as the nuclear genome. In accordance with the dikaryotic state of the fungus, the nuclear genome has a diploid character. Interestingly, the mitochondrial genome appears duplicated. Bioinformatic analysis revealed a versatile secondary metabolism with an emphasis on terpenoid biosynthetic enzymes in and also in related strains. Two alleles of biosynthetic gene clusters for pleuromutilin were found in the genome of . The pleuromutilin genes were reassembled with yeast-specific elements for heterologous expression in . Our work lays the foundation for metabolic strain engineering towards higher yields of the valuable compound pleuromutilin.
众所周知,褶菌(Entolomataceae,伞菌目,担子菌门)能产生萜类截短侧耳素,这是左法莫林和瑞他帕林等重要医学抗生素的生物技术基础。它们独特的作用方式和良好的耐受性使得兽医和人类医疗保健领域对截短侧耳素衍生抗生素的需求不断增加。令人惊讶的是,尽管它们具有药学重要性,但尚无任何产截短侧耳素真菌的基因组序列。在此,我们展示了产截短侧耳素的DSM1602的高质量基因组草图序列以及功能基因组注释。更确切地说,我们采用了结合Illumina测序和纳米孔测序的混合组装策略来组装线粒体基因组和核基因组。根据该真菌的双核状态,核基因组具有二倍体特征。有趣的是,线粒体基因组似乎是重复的。生物信息学分析揭示了一种多功能的次生代谢,重点是该菌株以及相关菌株中的萜类生物合成酶。在该菌株的基因组中发现了截短侧耳素生物合成基因簇的两个等位基因。截短侧耳素基因与酵母特异性元件重新组装,以便在酵母中进行异源表达。我们的工作为通过代谢菌株工程提高有价值化合物截短侧耳素的产量奠定了基础。