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Garkava-Gustavsson, L.

Publications and source records attributed to Garkava-Gustavsson, L..

2 recordsLinked to original sources

Genome sequence resources from three isolates of the apple canker pathogen Neonectria ditissima infecting forest trees.

Neonectria ditissima is a generalist ascomycete plant pathogen causing canker diseases on a variety of hardwood tree species and can cross-infect many of them. The fungus enters the plants through wounds throughout the year. N. ditissima is considered a major threat to apple production responsible for the fruit tree canker disease which damages trees and causes rotting of fruits in storage. Nearby forests and shelter belts can serve as source of inoculum for well-managed apple orchards. Thus, knowledge about the N. ditissima isolates infecting different host species is essential for designing integrated pest management strategies. Here, we describe the genomes of three N. ditissima isolates, Nd_iso34, Nd_iso35, and Nd_iso36, infecting European beech, American tulip tree, and American beech, respectively. We obtained genome assemblies of ca. 45 megabases for all isolates, covering 94% of the N. ditissima reference annotation, and 97% of the universal single-copy orthologs (BUSCOs). We conclude that these genome assemblies are a highly relevant resource considering the scarcity of genomic data available for N. ditissima.

genomics↗

NRPS-gene disruption in the apple-pathogen, Neonectria ditissima

Apple production in Sweden and elsewhere is being threaten by the fungus, Neonectria ditissima, which causes a disease known as Fruit Tree Canker. The disease can cause extensive damages and the removal of diseased-wood and heavily infected trees can be laborious and expensive. Currently, there is no way to eradicate the fungus from infected trees and our knowledge of the infection process is limited. Thus, in order to target and modify genes efficiently, the genetic transformation technique developed for N. ditissima back in 2003 was modified. We report on the upgraded protocol and show that protoplasts were viable, able to uptake foreign DNA, and able to regenerate back into a mycelial colony, either as targeted gene-disruption mutants or as ectopic mutants expressing GFP.

molecular biology↗