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Biology subjects

van Esse, H. P.

Publications and source records attributed to van Esse, H. P..

2 recordsLinked to original sources

The dominant lineage of Phakopsora pachyrhizi in the United States of America does not have a Brazilian origin

O_LIAsian soybean rust (ASR), caused by the obligate biotrophic fungus, Phakopsora pachyrhizi, was first reported in the continental United States of America (USA) in 2004 and over the years has been of concern to soybean production in the USA. The prevailing hypothesis is that P. pachyrhizi spores were introduced into the USA via hurricanes originating from South America, particularly Hurricane Ivan. C_LIO_LITo investigate the genetic diversity and global population structure of P. pachyrhizi, we employed exome-capture based sequencing on 84 field isolates collected from different geographic regions worldwide. We compared the gene-encoding regions from all these field isolates and found that four major haplotypes are prevalent worldwide. Here, we provide genetic evidence supporting multiple incursions that have led to the currently established P. pachyrhizi population of the USA. Phylogenetic analysis of mitochondrial genes further supports this hypothesis. C_LIO_LINotably, we observed limited genetic diversity in P. pachyrhizi populations in Brazil, suggesting a clonal population structure in that country that contrasts to populations from the USA and Africa. C_LIO_LIThis study provides the first comprehensive characterization of P. pachyrhizi population structures defined by genetic evidence from populations across major soybean growing regions. C_LI

evolutionary biology↗

Discovery of functional NLRs using expression level, high-throughput transformation, and large-scale phenotyping

Protecting crops from pests and diseases is vital for the sustainable agricultural systems needed for food security. Introducing functional resistance genes to enhance the plant immune system is an effective method of disease control, but identifying new immune receptors is time-consuming and resource intensive. We observed that functional immune receptors of the NLR class show a signature of high expression in uninfected plants across both monocot and dicot species. Here we show that this signature, combined with high throughput crop transformation, can be used to rapidly identify candidate NLRs from diverse plant species and validate pathogen resistance directly in crop plants. As a proof of concept, we generated a wheat transgenic library carrying 995 NLRs from 18 grass species. Screening the collection with the stem rust pathogen Puccinia graminis, which is a major threat to wheat production, we confirm 19 new resistance genes. This pipeline facilitates resistance gene discovery, unlocking a large gene pool of diverse and non-domesticated plant species and providing in-planta gene validation of disease resistance directly in crops.

plant biology↗