Penicillium molds impact the transcriptome and evolution of the cheese bacterium Staphylococcus equorum

Ruby Ye1, Christopher Tomo1, Neal Chan1

  • 1Department of Biology, Tufts University, Medford, Massachusetts, USA.

Msphere
|May 23, 2023
PubMed

Insights

Penicillium molds trigger conserved bacterial responses, impacting Staphylococcus equorum evolution. Fungal interactions constrain bacterial genomic evolution, revealing conserved microbial community dynamics.

Area of Science:

  • Microbiology and Microbial Ecology
  • Evolutionary Biology
  • Genomics and Transcriptomics

Background:

  • Penicillium molds historically spurred antibiotic discovery, yet their ecological impact on bacteria in multispecies communities remains understudied.
  • Understanding fungal-bacterial interactions is crucial, especially in environments like cheese rinds where these microbes coexist.

Purpose of the Study:

  • To investigate the impact of four Penicillium species on the global transcription and evolution of Staphylococcus equorum.
  • To explore conserved mechanisms underlying Staphylococcus-Penicillium interactions and their evolutionary consequences.

Main Methods:

  • Utilized a cheese rind model microbiome to co-culture Staphylococcus equorum with Penicillium species.
  • Employed RNA sequencing to analyze global transcriptional responses of S. equorum.
  • Conducted a 12-week experimental evolution study to assess genomic changes in S. equorum populations.

Main Results:

  • Identified a core transcriptional response in S. equorum against all tested Penicillium strains, including altered thiamine biosynthesis, fatty acid degradation, and siderophore transport.
  • Observed minimal non-synonymous mutations in S. equorum populations co-cultured with Penicillium over 12 weeks.
  • A specific mutation in a phosphoesterase gene, absent in Penicillium-evolved populations, reduced S. equorum fitness against antagonistic Penicillium.

Conclusions:

  • Divergent Penicillium species can elicit conserved transcriptional and genomic responses in co-occurring bacteria like S. equorum.
  • Fungal biotic environments can significantly constrain bacterial evolution, highlighting conserved mechanisms in microbial interactions.
  • Findings inform the management of Penicillium-dominated microbial communities in industrial and food production settings.

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