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Molnar, T. J.

Publications and source records attributed to Molnar, T. J..

2 recordsLinked to original sources

Corylus avellana disease management: using metagenomics to illuminate the rhizosphere microbiome of Corylus

The European hazelnut, Corylus avellana, is one of the most economically important tree nut crops globally. The biotrophic ascomycete pathogen Anisogramma anomala, found naturally associated with wild C. americana, continues to pose a significant threat to European hazelnut production across North America. Here, metagenomics was used to examine the taxonomic and functional features of the rhizosphere microbial communities of hazelnut trees differing in their levels of resistance to A. anomala: highly tolerant Corylus americana, and resistant and susceptible Corylus avellana. No statistically significant differences in microbial alpha diversity or beta diversity were noted between the three rhizosphere groups. Compared to bulk soil, all three rhizosphere groups were enriched for the fungal phylum Basidiomycota and bacterial phylum "Candidatus Rokubacteriota". At the genus level, the bacterial genera Actinospica, Occallatibacter, and "Candidatus Sulfotelmatobacter" were under-represented, while the genus Rhizobacter was over-represented, in the resistant and susceptible C. avellana rhizosphere samples compared to the bulk soil. A total of 45 dereplicated, high-quality metagenome-assembled genomes (MAGs) were generated, corresponding to 41 bacteria and 4 archaea. Many of the MAGs carried multiple biosynthetic gene clusters, including MAGs corresponding to the genera Lysobacter and Actinospica. Overall, the low differentiation of the rhizosphere microbiomes suggest that differences in A. anomala disease expression are likely not associated with differences in the rhizosphere microbiome. Nevertheless, the results shed new light on the rhizosphere communities of two species of hazelnut, and woody perennials more broadly, and identify potential avenues for future research into the development of microbial inoculants for Corylus spp..

microbiology↗

Chromosome-Scale Assemblies of Flowering Dogwood Cultivars Enable Identification of Candidate Genes Regulating Anthocyanin Biosynthesis in Leaves and Bracts

O_LIThe North American-native ornamental tree, flowering dogwood (Cornus florida L.), has a showy bract display that can range in color from white to pink to deep red. Although many trees have white bracts, there is consumer demand for novel pigmentation in the bracts combined with other traits of interest. Because the genetic basis of all traits in flowering dogwood is unknown, combining them using traditional breeding efforts is time, labor, and space-intensive. C_LIO_LIWe developed foundational genomic resources to establish marker-assisted selection within flowering dogwood breeding. We generated diploid, chromosome-scale, annotated genome assemblies for one pink-bracted and red-leafed tree and one white-bracted and green-leafed tree. Additionally, a phenotyping protocol for bract color and presence/absence diagnostic SNPs for bract and leaf color were established. C_LIO_LIWe leveraged these resources to evaluate linkage associations and differential gene expression related to anthocyanin biosynthesis to identify candidate genes regulating bract and leaf pigmentation. Within a 14Mb locus we identified 14 anthocyanin-related candidate genes. Two genes, with MYB (g19533) and RING finger (g19556) binding domains, had both differential gene expression and variants with the expected segregation pattern. C_LIO_LIThese resources will be valuable in combining pink-red bracts with other traits to advance flowering dogwood breeding. C_LI

genomics↗