Molecular phylogeny of the Entomophthoromycota

Andrii P Gryganskyi1, Richard A Humber, Matthew E Smith

  • 1Duke University, Department of Biology, Durham, NC 27708-90338, USA. Andrii.Gryganskyi@gmail.com

Insights

The Entomophthoromycota fungi, known insect pathogens, form a distinct evolutionary lineage. This study reveals their origin around 405 million years ago, likely from saprobic ancestors.

Area of Science:

  • Mycology and Evolutionary Biology
  • Phylogenetics of Fungi

Background:

  • Entomophthoromycota fungi are widespread pathogens of insects and invertebrates.
  • This fungal group also includes parasites of vertebrates and saprobic species.
  • Previous phylogenetic placement within basal fungal lineages was unclear.

Purpose of the Study:

  • To resolve phylogenetic relationships within the Entomophthoromycota.
  • To determine the placement of Entomophthoromycota among basal fungal lineages.
  • To reconstruct the evolutionary history and origin of this fungal group.

Main Methods:

  • Phylogenetic analyses using Bayesian Inference (BI) and Maximum Likelihood (ML).
  • Multi-gene dataset including nuclear 18S and 28S rDNA, mitochondrial 16S, and RPB2.
  • Inclusion of non-molecular data and molecular clock models for dating.

Main Results:

  • Entomophthoromycota identified as a monophyletic group, distinct from other Zygomycota.
  • Five well-supported lineages within Entomophthoromycota identified: Basidiobolus, Conidiobolus, and three in Entomophthoraceae.
  • Estimated origin of Entomophthoromycota at 405±90 million years ago.

Conclusions:

  • The ancestor of Entomophthoromycota was likely morphologically similar to Conidiobolus species.
  • Entomopathogenic lineages in Entomophthoraceae likely evolved from saprobic or facultative ancestors.
  • Variable DNA substitution rates among lineages complicate precise molecular clock estimations.

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