Secondary metabolites from hypocrealean entomopathogenic fungi: genomics as a tool to elucidate the encoded parvome

Liwen Zhang1, Qun Yue1, Chen Wang1

  • 1Biotechnology Research Institute, The Chinese Academy of Agricultural Sciences, 12 Zhongguancun South Street, Beijing 100081, P. R. China. xuyuquan@caas.cn.

Insights

Hypocrealean entomopathogenic fungi (HEF) produce diverse secondary metabolites (SMs) with significant bioactivities. Analyzing their genomes reveals many biosynthetic gene clusters (BGCs), aiding the discovery of novel compounds for medicine and agriculture.

Area of Science:

  • Fungal genomics and metabolomics
  • Bioprospecting for bioactive compounds

Background:

  • Entomopathogenic fungi in the order Hypocreales (HEF) synthesize numerous secondary metabolites (SMs).
  • These SMs possess significant bioactivities, including insecticidal and antimicrobial properties, with potential applications in medicine and agriculture.
  • Advances in genomics and bioinformatics have identified many SM biosynthetic gene clusters (BGCs) in HEF genomes.

Purpose of the Study:

  • To survey and analyze the secondary metabolome predicted from available Hypocrealean entomopathogenic fungi genomes.
  • To identify and characterize biosynthetic gene clusters (BGCs) encoding secondary metabolites (SMs) in these fungi.
  • To explore the potential of these fungi for discovering novel bioactive compounds.

Main Methods:

  • Genome-wide analysis of 40 Hypocrealean entomopathogenic fungi genomes.
  • Bioinformatic identification and classification of secondary metabolite biosynthetic gene clusters (BGCs).
  • Survey of polyketide, nonribosomal peptide, terpenoid, and hybrid SM BGCs.

Main Results:

  • A comprehensive survey of SM BGCs across 40 HEF genomes was conducted.
  • Many BGCs were identified, including those for known SMs and numerous 'orphan' BGCs.
  • The study catalogued the predicted secondary metabolome of these fungi.

Conclusions:

  • Investigating the encoded parvome of HEF is crucial for discovering novel secondary metabolites.
  • This research enhances understanding of SM functions in fungal interactions.
  • The identified BGCs offer potential for developing new drugs and crop protection agents.

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