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Biology subjects

Dyderski, M. K.

Publications and source records attributed to Dyderski, M. K..

2 recordsLinked to original sources

Beyond seed counts: divergent climatic windows shape seed mass and viability in European beech

Mast seeding research has documented climate-driven changes in seed quantity, but tells us little about whether the seeds being counted are physiologically capable of germinating. The widespread practice of treating filled seeds as viable seeds has rarely been tested at scales adequate to detect divergent responses. Using a nationwide, 20-year dataset of 13,349 European beech (Fagus sylvatica L.) seed lots subjected to laboratory viability testing, we show that among filled seeds, mass and viability are only weakly correlated (Spearmans {rho} = 0.15) and respond to entirely different seasonal climatic windows. Viability tracked previous summer and harvest-year spring temperatures, while mass tracked neither yet declined markedly between 2009 and 2019, most steeply at northern latitudes. Pre-harvest climate also left lasting legacy effects on viability during storage. Together, these results reveal two independent dimensions of reproductive quality eroding under contemporary environmental change, invisible to count- or mass-based monitoring.

plant biology↗

Population and adaptation history of 739 Thlaspi arvense natural accessions

Pennycress (Thlaspi arvense) is a promising intermediate oilseed crop, producing oil suitable for conversion to biofuels--including aviation fuels. While domestication efforts are ongoing, a deeper understanding of the genetic architecture of traits is crucial for informing future breeding efforts. Here, we conducted the largest genomic and phenotypic survey of pennycress to date, analyzing 739 accessions collected across four continents. Leveraging whole-genome sequencing and field-collected phenotypes, we characterized the standing genetic variation underlying key agronomic traits and climate resilience. Our findings revealed multiple independent migration events to North America, with substantial genetic admixture. We identified homologs of Arabidopsis thaliana flowering-time genes that contribute to adaptation and demonstrated the agronomic benefits of winter-type pennycress. Furthermore, through multi-season field trials, we identified a genomic region containing a cluster of mTERF genes strongly associated with green canopy coverage, a critical trait for biomass retention and yield stability. These insights provide a genomic roadmap for accelerating pennycress domestication and improving its resilience to climate variability.

genomics↗