Genome sequencing and analysis of the paclitaxel-producing endophytic fungus Penicillium aurantiogriseum NRRL 62431

Y Yang, H Zhao, RA Barrero, B Zhang, G Sun… - BMC genomics, 2014 - Springer
BMC genomics, 2014Springer
Abstract Background Paclitaxel (Taxol™) is an important anticancer drug with a unique
mode of action. The biosynthesis of paclitaxel had been considered restricted to the Taxus
species until it was discovered in Taxomyces andreanae, an endophytic fungus of T.
brevifolia. Subsequently, paclitaxel was found in hazel (Corylus avellana L.) and in several
other endophytic fungi. The distribution of paclitaxel in plants and endophytic fungi and the
reported sequence homology of key genes in paclitaxel biosynthesis between plant and …
Background
Paclitaxel (Taxol™) is an important anticancer drug with a unique mode of action. The biosynthesis of paclitaxel had been considered restricted to the Taxus species until it was discovered in Taxomyces andreanae, an endophytic fungus of T. brevifolia. Subsequently, paclitaxel was found in hazel (Corylus avellana L.) and in several other endophytic fungi. The distribution of paclitaxel in plants and endophytic fungi and the reported sequence homology of key genes in paclitaxel biosynthesis between plant and fungi species raises the question about whether the origin of this pathway in these two physically associated groups could have been facilitated by horizontal gene transfer.
Results
The ability of the endophytic fungus of hazel Penicillium aurantiogriseum NRRL 62431 to independently synthesize paclitaxel was established by liquid chromatography-mass spectrometry and proton nuclear magnetic resonance. The genome of Penicillium aurantiogriseum NRRL 62431 was sequenced and gene candidates that may be involved in paclitaxel biosynthesis were identified by comparison with the 13 known paclitaxel biosynthetic genes in Taxus. We found that paclitaxel biosynthetic gene candidates in P. aurantiogriseum NRRL 62431 have evolved independently and that horizontal gene transfer between this endophytic fungus and its plant host is unlikely.
Conclusions
Our findings shed new light on how paclitaxel-producing endophytic fungi synthesize paclitaxel, and will facilitate metabolic engineering for the industrial production of paclitaxel from fungi.
Springer
以上显示的是最相近的搜索结果。 查看全部搜索结果