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Balancing growth and immunity of potato by humidity-dependent expression of a late blight resistance gene.

Inducible expression of resistance genes is an effective approach to balance plant growth and immunity, thus facilitating the development of disease-resistant crop cultivars. While pathogen-responsive and immunity-related promoters have been adopted for this purpose, alternative design strategies remain to be explored. High relative humidity (RH) has been recognized as a crucial permissive environmental condition for the occurrence of devastating plant diseases including tomato and potato late blight. Here, we identified humidity-activated cis-regulatory elements (HAEs) in Solanum lycopersicum through an integrative analysis of transcriptomics and chromatin accessibility data. Sequence homology-inferred HAEs in S. tuberosum can predict humidity-elicited changes in downstream gene expression. Transgenic S. tuberosum lines expressing a late blight resistance gene driven by an artificial humidity-inducible promoter containing a natural S. tuberosum HAE were generated. These transgenic lines exhibited comparable late blight resistance levels to the lines overexpressing the same resistance gene in controlled zoospore inoculation bioassays, while avoiding growth suppression and tuber yield penalties in common garden experiments. Our findings highlight the importance of plant cis-regulatory elements in the transcriptional responses to high RH and provide a proof-of-concept for a humidity-inducible environment-responsive resistance gene deployment strategy to engineer disease-resistant crop cultivars without compromising growth and yield.

Phytophthora infestans

Shining Light on Late Blight.

In this retrospective on my journey in science, I shine light on the ins and outs of the late blight pathogen Phytophthora infestans. While studying plant pathology, I became fascinated by the molecular mechanisms that govern the development of cells and organisms and ended up unraveling intimate plant-microbe interactions. I have been fortunate to work in an inspiring environment and with committed coworkers. I am proud of what we achieved as a team. By digging into the biology of Phytophthora and exploring genomes and pathogenicity mechanisms, we uncovered a treasure trove of novelties and peculiarities that offer ample opportunities for designing pathogen-informed control strategies.

Plant Diseases

Centuries of Potato Late Blight: Tracking Global Epidemics and Managing Future Outbreaks.

Phytophthora infestans killed the potato crop in Ireland in 1845, leading to widespread famine and the death of more than one million people. Historic herbarium specimens from the famine era were used to understand the pathogen's biology and track its global spread, providing a valuable resource for research. Historic outbreaks in the United States and Europe were caused by the FAM-1 lineage, whereas the US-1 lineage spread later. The famine lineage was basal in the phylogeny and ancestral to modern US-1, Mexican, and globally aggressive lineages. An admixture between the famine lineage and the Andean species Phytophthora andina was revealed, indicating a South American origin of the disease. Temporal changes in the presence and abundance of virulence genes were observed in historic compared to modern genomes. Expansion in effector abundance occurred as new genotypes emerged in the mid-twentieth century. Disease surveillance and genotyping on a global scale have helped to inform disease management.

Solanum tuberosum