Persistent climate maladaptation decreases performance of a keystone tree species ( Quercus lobata )

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Valley oaks planted outside their native climates performed poorly due to heat, with performance declining further during hot years, but managing based on high-performing families could improve future outcomes.

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This study utilized a 12-year common garden experiment to assess the performance of valley oak (Quercus lobata) across its range in response to historical and contemporary climate conditions. The results demonstrated that trees exhibited persistent maladaptation, performing best under summer temperatures cooler than those of their home climates, with fitness costs intensifying during hotter years. Simulations indicated that assisted gene flow using high-performing maternal families would yield better future outcomes than traditional climate-matched seed sourcing strategies. This paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Maladaptation in foundational tree species can undermine ecosystem stability, but few studies have quantified its current magnitude or its consequences under ongoing climate change. Using a range-wide provenance test of valley oak ( Quercus lobata ), we tested whether historical climate warming has already produced temperature-driven climate–fitness mismatches, whether climatic extremes intensify these mismatches, and whether understanding these patterns can inform management. Growth and survival models from a 12-year common garden study revealed that trees performed best under summer temperatures cooler than their home climates, demonstrating persistent maladaptation to contemporary temperature maxima. This mismatch intensified during hotter years, indicating that climate variability amplifies fitness costs and that stressful years impose lasting effects. However, simulations of assisted gene flow showed that sourcing seeds from high-performing maternal families yields greater projected future performance than climate-matched sourcing across the species’ range. Together, these findings provide rare phenotypic evidence that maladaptation is already constraining a keystone tree species and show that phenotype-informed management can outperform climate-matched seed sourcing under further temperature increases.
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Abstract Maladaptation in foundational tree species can undermine ecosystem stability, but few studies have quantified its current magnitude or its consequences under ongoing climate change. Using a range-wide provenance test of valley oak (Quercus lobata), we tested whether historical climate warming has already produced temperature-driven climate–fitness mismatches, whether climatic extremes intensify these mismatches, and whether understanding these patterns can inform management. Growth and survival models from a 12-year common garden study revealed that trees performed best under summer temperatures cooler than their home climates, demonstrating persistent maladaptation to contemporary temperature maxima. This mismatch intensified during hotter years, indicating that climate variability amplifies fitness costs and that stressful years impose lasting effects. However, simulations of assisted gene flow showed that sourcing seeds from high-performing maternal families yields greater projected future performance than climate-matched sourcing across the species’ range. Together, these findings provide rare phenotypic evidence that maladaptation is already constraining a keystone tree species and show that phenotype-informed management can outperform climate-matched seed sourcing under further temperature increases. Competing Interest Statement The authors have declared no competing interest. Footnotes Figures and methods have been updated to reflect new data and minor revisions to analyses (these updates do not change the overall inferences of the study). Text has been revised for clarity throughout.

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