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Published on: May 27, 2022
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.
Abstract:
The observation that Penicillium molds can inhibit the growth of Staphylococcus was a catalyst for the antibiotic revolution. Considerable attention has been paid to purified Penicillium metabolites that inhibit bacteria, but little is known about how Penicillium species impact the ecology and evolution of bacteria in multispecies microbial communities. Here, we investigated how four different species of Penicillium can impact global transcription and evolution of a widespread Staphylococcus species (S. equorum) using the cheese rind model microbiome. Through RNA sequencing, we identified a core transcriptional response of S. equorum against all five tested Penicillium strains, including upregulation of thiamine biosynthesis, fatty acid degradation, and amino acid metabolism as well as downregulation of genes involved in the transport of siderophores. In a 12-week evolution experiment where we co-cultured S. equorum with the same Penicillium strains, we observed surprisingly few non-synonymous mutations across S. equorum populations evolved with the Penicillium species. A mutation in a putative DHH family phosphoesterase gene only occurred in populations evolved without Penicillium and decreased the fitness of S. equorum when co-cultured with an antagonistic Penicillium strain. Our results highlight the potential for conserved mechanisms of Staphylococcus-Penicillium interactions and demonstrate how fungal biotic environments may constrain the evolution of bacterial species.IMPORTANCEFungi and bacteria are commonly found co-occurring both in natural and synthetic microbiomes, but our understanding of fungal-bacterial interactions is limited to a handful of species. Conserved mechanisms of interactions and evolutionary consequences of fungal-bacterial interactions are largely unknown. Our RNA sequencing and experimental evolution data with Penicillium species and the bacterium S. equorum demonstrate that divergent fungal species can elicit conserved transcriptional and genomic responses in co-occurring bacteria. Penicillium molds are integral to the discovery of novel antibiotics and production of certain foods. By understanding how Penicillium species affect bacteria, our work can further efforts to design and manage Penicillium-dominated microbial communities in industry and food production.
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.
Related Concept Videos
Gene Regulation in Microbial Communities: Quorum Sensing
Fungal Group Zygomycota
Fungal Phylum Ascomycota
Other Stress Responses in Bacteria
Mutations in Microorganisms

