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May 9, 2026Plant Cell & Environment2 citationsOpen Access

A Meta‐Analysis Reveals That the Protective Role of Silicon in Grasses Against Fungal Pathogens Depends on Infection Mechanism

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STSarah J. ThorneJCJ. Robert CookeSHSusan E. Hartley

Key Points

  • To assess how silicon fertilization affects fungal disease resistance in grasses based on pathogen infection mechanisms.
  • Conducted a meta-analysis to evaluate the impact of silicon fertilization on disease resistance against various fungal pathogens in grasses.
  • Analyzed data on disease severity and biomass in infected plants across different fungal infection strategies.
  • Silicon fertilization decreased disease severity by 43%, increasing biomass of infected plants by 35%.
  • The effectiveness of silicon varied by pathogen traits: greater against appressoria-producing pathogens and less effective against stomatal entry pathogens.
  • Silicon was more beneficial against pathogens with haustoria and infection hyphae involved in nutrient acquisition.

Abstract

Pathogen infection drives plant community structure and constrains global agricultural productivity. Silicon (Si) improves resistance to abiotic and herbivory stress, particularly in grasses, but relatively little attention has addressed Si-mediated resistance to pathogens, nor has it tested how this varies according to the type of plant and pathogen and is altered by environmental factors. We performed a meta-analysis to quantitatively assess the benefits of Si fertilisation for improving disease resistance against fungal pathogens in grasses. Overall, Si fertilisation decreased disease severity by 43% and increased biomass of infected plants by 35%. The underlying mechanisms were investigated by analysing the impacts of Si against diverse fungal infection strategies. The disease suppressive effect of Si was greater for pathogens producing appressoria, a structure involved in cell wall penetration and effector release, but lower against pathogens entering through stomata. Furthermore, Si was more effective against pathogens that produce haustoria or infection hyphae, which are involved in nutrient acquisition. These findings advance knowledge of plant-pathogen interactions by identifying key pathogen traits determining Si effectiveness against pathogen attack in grasses. Our results support using Si fertiliser for cereal crops to reduce fungal damage and suggest Si should be considered in studies of grass evolutionary history and community structure.

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Cite This Study

Thorne et al. (2026) studied this question.

synapsesocial.com/papers/69fed03cb9154b0b828773a9https://doi.org/10.1111/pce.70586
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