Protocols to enable fluorescence microscopy of microbial interactions on living maize silks (style tissue)

Michelle E H Thompson1, Manish N Raizada1

  • 1Department of Plant Agriculture, University of Guelph, Guelph, ON N1G 2W1, Canada.

PubMed

Insights

Researchers developed contained methods to study maize silk microbes, including fungal pathogens and beneficial bacteria, using confocal microscopy. These protocols enable in planta observation of microbe-plant interactions while maintaining silk viability and experimental relevance.

Area of Science:

  • Plant Pathology
  • Microbiology
  • Microbial Ecology

Background:

  • Maize silks are crucial for reproduction and host beneficial microbes and pathogens.
  • Studying microbe-plant interactions on living silks using microscopy is key but faces containment and viability challenges.
  • Regulatory concerns and experimental needs necessitate contained, biologically relevant in planta silk studies.

Purpose of the Study:

  • To develop and present contained methods for studying microbe colonization and interactions on living maize silks.
  • To enable in planta imaging of interactions between fungal pathogens and bacterial endophytes on maize silks.
  • To provide protocols for observing microbial colonization and infection pathways on maize silks.

Main Methods:

  • Two methods were developed: one using silks attached to the cob, the other using detached silk segments.
  • Both methods utilized fluorescently tagged microbes (DsRed-tagged bacteria, GFP-tagged Fusarium graminearum) for confocal microscopy.
  • Protocols focused on maintaining silk viability, allowing researcher access, and facilitating multiple replicates under contained conditions.

Main Results:

  • The developed methods successfully allowed for the observation of microbe infection, colonization, and interactions on maize silks.
  • Bacterial endophytes were observed colonizing fungal hyphae, silk trichomes, and entering silks through wounds and cut ends.
  • The protocols proved effective for studying interactions between Fusarium graminearum and silk-derived bacterial endophytes.

Conclusions:

  • The presented contained methods meet the criteria for studying maize silk-microbe interactions in planta.
  • These protocols can be applied to investigate various silk-associated microbes, including significant fungal pathogens.
  • The methods facilitate crucial insights into microbial colonization and interactions within the maize reproductive structure.

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