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Synthetic biology based construction of biological activity-related library of fungal decalin-containing diterpenoid pyrones.

Kento TsukadaShono ShinkiAkiho KanekoKazuma MurakamiKazuhiro IrieMasatoshi MuraiHideto MiyoshiShingo DanKumi KawajiHironori HayashiEiichi N KodamaAki HoriEmil SalimTakayuki KuraishiNaoya HirataYasunari KandaTeigo Asai
Published in: Nature communications (2020)
A synthetic biology method based on heterologous biosynthesis coupled with genome mining is a promising approach for increasing the opportunities to rationally access natural product with novel structures and biological activities through total biosynthesis and combinatorial biosynthesis. Here, we demonstrate the advantage of the synthetic biology method to explore biological activity-related chemical space through the comprehensive heterologous biosynthesis of fungal decalin-containing diterpenoid pyrones (DDPs). Genome mining reveals putative DDP biosynthetic gene clusters distributed in five fungal genera. In addition, we design extended DDP pathways by combinatorial biosynthesis. In total, ten DDP pathways, including five native pathways, four extended pathways and one shunt pathway, are heterologously reconstituted in a genetically tractable heterologous host, Aspergillus oryzae, resulting in the production of 22 DDPs, including 15 new analogues. We also demonstrate the advantage of expanding the diversity of DDPs to probe various bioactive molecules through a wide range of biological evaluations.
Keyphrases
  • cell wall
  • genome wide
  • saccharomyces cerevisiae
  • gene expression
  • high resolution
  • quantum dots
  • pulmonary artery
  • mass spectrometry
  • pulmonary hypertension
  • pulmonary arterial hypertension
  • coronary artery
  • drug induced