Climate gradients drive variation in seed morphology and life history with impacts to seedling performance in Fraxinus nigra

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ID: 323827
2026
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Ranked #47 of 197 articles by views in Annals of botany

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Abstract
Abstract Background and Aims Climate gradients influence seed morphology, emergence, and early life-history traits with cumulative impacts to seedling performance. For ex situ seed collections, which represent an invaluable repository of potential trait information for species management and conservation, climate data can guide preservation of adaptive variation and inform deployment strategies for restoration. Here we leverage a range-wide ex situ seed collection of critically endangered black ash seeds (Fraxinus nigra) to evaluate how climatic gradients shape variation in morphology and early life-history. Methods To test how climate of origin, seed morphology, and early life-history interact to impact first year seedling performance, high-throughput x-ray imaging and neural network–based segmentation were used to quantify variation in seed morphology for 701 maternal lineages spanning 76 populations across the range of F. nigra. Following this, a subset of seeds were used to establish a common garden experiment and quantify variation in emergence, early life-history transitions, and their cumulative impact to first-year survival and growth. Results On average, differences within-populations explained ∼43% of the variability in seed morphology, while among-population differences explained ∼14%. This suggests that substantial genetic variation exists within populations for natural selection to act upon and differences have evolved among populations. Climate associations indicated warmer and drier environments predicted heavier seeds with faster developmental transitions and increased first-year height. Together, climate of origin, seed mass, and timing of developmental transitions best predicted seedling performance, with populations from more continental environments exhibiting greater survival and first-year height accumulation on average. Conclusions Overall, these results highlight the importance of climate of origin, seed traits, and early developmental transitions to first-year performance in a perennial tree species. This work demonstrates how ex situ collections can be used to identify climatically structured trait variation and guide conservation strategies aimed at maintaining adaptive potential under environmental change.
Reference Key
openalex_W7172515026 Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors Kyra LoPiccolo, Jacob D Mazza, Lucía Anderson, Dolzodmaa Davaasuren, Jill A. Hamilton
Journal Annals of botany
Year 2026
DOI
10.1093/aob/mcag237
URL
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