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Taking Genomics Outdoors: Linking Local Adaptation, Trait Variation and Gene Expression in Grass Ecotypes Across a
Jack Sytsma1, Matthew Galliart2, Kian Fogarty1
1Division of Biology, Kansas State University, Manhattan, Kansas, USA.
None:
With increasing droughts, understanding local adaptation and drought tolerance in ecologically dominant species is crucial for enhancing ecosystem resilience. We leveraged a long-term reciprocal garden to assess local adaptation and drought responses in Andropogon gerardi, a foundation grassland species in the US Great Plains. Our objectives were to identify adaptive traits, explore gene expression responses across a rainfall gradient and under experimental drought, and integrate trait-based analyses with gene expression profiles to test for local adaptation. Reciprocal gardens, established a decade ago, are composed of different A. gerardi ecotypes sourced along a rainfall gradient (MAP 480-1167 mm year.-1) and sown as ecological communities. Rainout shelters imposed experimental drought. We hypothesized that ecotypes should perform best in their homesite, reflecting local adaptation. The dry ecotype should perform best under rainouts and exhibit traits and expression profiles favouring drought tolerance; the wet ecotype should favour traits and gene expression enhancing growth and resource acquisition. We found ecotypes had highest biomass and cover in their homesite, confirming local adaptation. The dry ecotype showed stress-tolerance strategies (shorter, more water-efficient, upregulated drought-response genes), while the wet ecotype emphasized growth strategies (taller, higher biomass, upregulation of growth hormones). Using co-expression networks, gene clusters linked adaptive traits, revealing genetic mechanisms of adaptation. Together, our results demonstrate that dry ecotypes maintain productivity under water limitation through coordinated physiological and transcriptomic stress-tolerance strategies, whereas wet ecotypes achieve higher productivity only under high-moisture conditions. We provide strong support for climate-matched ecotypes to improve grassland restoration and resilience under increasing drought.
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