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Elevating Air Temperature May Enhance Future Epidemic Risk of the Plant Pathogen Phytophthora infestans .

E-Jiao WuYan-Ping WangLi-Na YangMi-Zhen ZhaoJiasui Zhan
Published in: Journal of fungi (Basel, Switzerland) (2022)
Knowledge of pathogen adaptation to global warming is important for predicting future disease epidemics and food production in agricultural ecosystems; however, the patterns and mechanisms of such adaptation in many plant pathogens are poorly understood. Here, population genetics combined with physiological assays and common garden experiments were used to analyze the genetics, physiology, and thermal preference of pathogen aggressiveness in an evolutionary context using 140 Phytophthora infestans genotypes under five temperature regimes. Pathogens originating from warmer regions were more thermophilic and had a broader thermal niche than those from cooler regions. Phenotypic plasticity contributed ~10-fold more than heritability measured by genetic variance. Further, experimental temperatures altered the expression of genetic variation and the association of pathogen aggressiveness with the local temperature. Increasing experimental temperature enhanced the variation in aggressiveness. At low experimental temperatures, pathogens from warmer places produced less disease than those from cooler places; however, this pattern was reversed at higher experimental temperatures. These results suggest that geographic variation in the thermal preferences of pathogens should be included in modeling future disease epidemics in agricultural ecosystems in response to global warming, and greater attention should be paid to preventing the movement of pathogens from warmer to cooler places.
Keyphrases
  • gram negative
  • climate change
  • antimicrobial resistance
  • candida albicans
  • current status
  • multidrug resistant
  • risk assessment
  • human health
  • healthcare
  • heavy metals
  • genome wide
  • working memory
  • high throughput
  • copy number