Annals of Botany· 2026Q1
Cascading effects of insufficient seed cold stratification across early life-stages in three temperate trees: impaired phenology and reduced seedling fitness under climate warming
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- Q1SCImago
- 2026year
Short summary
Missing cold stratification delays germination and reduces seedling growth and fitness in temperate trees (Abies alba, Acer pseudoplatanus, Fagus sylvatica), particularly under warmer temperatures, with projections showing negative impacts on regeneration under climate change.
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Key points
- Missing cold stratification delayed germination in all three temperate tree species studied (Abies alba, Acer pseudoplatanus, Fagus sylvatica).
- Fagus sylvatica showed decreased germination and leaf emergence proportions without sufficient cold stratification.
- Abies alba and Fagus sylvatica seedling growth was constrained by insufficient stratification, particularly under warm temperatures.
- Climate change projections suggest reduced early fitness for Fagus sylvatica in its western distribution due to insufficient stratification.
AI-generated from the title and abstract; the full text is not read.
Abstract
BACKGROUND AND AIMS: Global warming is shortening winters in temperate ecosystems, limiting cold stratification for seeds with physiological dormancy (PD). The consequences of incomplete dormancy release can cascade beyond germination, potentially affecting fitness in subsequent life-stages, yet this remains understudied in trees. Here we assess the effects of insufficient stratification on germination, leaf emergence and seedling performance in three broad-range temperate tree species. We further evaluate how reduced cold stratification under climate change may drive shifts in these traits across the species distribution. METHODS: We sampled six Abies alba, six Acer pseudoplatanus and four Fagus sylvatica populations across their native distribution. 10 287 seeds of the three species were sown in climatic-controlled chambers at three different temperature regimes and two stratification treatments. We assessed the success, timing and synchrony of germination and first leaf emergence. We further monitored seedling growth and biomass, as well as root and leaf mass fractions. We analysed the effects of unfulfilled stratification in response to sowing temperature and the influence of populations' climate using generalized linear mixed effect models. We projected shifts in the studied traits under a SSP5-8.5 climate change scenario accounting for reduced cold stratification across the species native distributions. KEY RESULTS: Missing cold stratification delayed germination time in all species and decreased F. sylvatica germination and leaf emergence proportions. It further constrained Ab. alba and F. sylvatica seedling growth, particularly under warm temperatures, irrespective of phenological changes. Spatial projections depicted important germination phenology changes across species distributions, uphill increases of Ab. alba seedling growth, and a decrease of F. sylvatica early fitness towards its western distribution. CONCLUSIONS: Cold stratification improved seedling development and their performance under warming beyond regulating germination. Unfulfilled cold stratification in a warmer climate may therefore constrain temperate tree species seed regeneration even if germination proportions or phenology remain unaffected.
The authors' abstract, as published at the source. Annals of Botany, 2026 · DOI ↗
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Field: Plant Science
Plant ScienceAgricultural and Biological Sciences