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Spatial, climate and ploidy factors drive genomic diversity and resilience in the widespread grass Themeda triandra. | LitMetric

AI Article Synopsis

  • Global climate change threatens ecosystems worldwide, including grasslands, with many plant species, like Themeda triandra in Australia, experiencing climate stress and showing varying genomic responses to environmental pressures.
  • The study involved genomic analysis of 472 T. triandra samples from 52 locations, revealing that 54% of genomic variation is due to isolation by distance and an additional 22% is influenced by climate factors like temperature and precipitation.
  • Findings indicate that ploidy polymorphism is common and may enhance the adaptability of T. triandra to hotter, drier climates, suggesting the need to include ploidy considerations in conservation strategies for resilience against climate change.

Article Abstract

Global climate change poses a significant threat to natural communities around the world, with many plant species showing signs of climate stress. Grassland ecosystems are not an exception, with climate change compounding contemporary pressures such as habitat loss and fragmentation. In this study, we assess the climate resilience of Themeda triandra, a foundational species and the most widespread plant in Australia, by assessing the relative contributions of spatial, environmental and ploidy factors to contemporary genomic variation. Reduced-representation genome sequencing on 472 samples from 52 locations was used to test how the distribution of genomic variation, including ploidy polymorphism, supports adaptation to hotter and drier climates. We explicitly quantified isolation by distance (IBD) and isolation by environment (IBE) and predicted genomic vulnerability of populations to future climates based on expected deviation from current genomic composition. We found that a majority (54%) of genomic variation could be attributed to IBD, while an additional 22% (27% when including ploidy information) could be explained by two temperature and two precipitation climate variables demonstrating IBE. Ploidy polymorphisms were common within populations (31/52 populations), indicating that ploidy mixing is characteristic of T. triandra populations. Genomic vulnerabilities were found to be heterogeneously distributed throughout the landscape, and our analysis suggested that ploidy polymorphism, along with other factors linked to polyploidy, reduced vulnerability to future climates by 60% (0.25-0.10). Our data suggests that polyploidy may facilitate adaptation to hotter climates and highlight the importance of incorporating ploidy in adaptive management strategies to promote the resilience of this and other foundation species.

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Source
http://dx.doi.org/10.1111/mec.15614DOI Listing

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