Intraspecific variability rivals interspecific differences in root traits of temperate tree seedlings

Abstract Global change and associated disturbances are increasing the risk of regeneration failure for tree species in temperate forests. Seedlings are particularly vulnerable to water stress due to their shallow root systems, making below‐ground plasticity a potentially key component of species adaptive capacity. Quantifying root trait variability and its drivers can improve our understanding of regeneration success under increasingly warm and dry conditions. We quantified between species variation (BTV) and intraspecific variation (ITV) in seven root traits linked to water uptake—root‐to‐shoot ratio, maximum rooting depth, proportion of absorptive roots, specific root length, root tissue density, average absorptive root diameter and root branching density—for seedlings of seven common, co‐occurring tree species in forests of northeastern North America. We sampled seedlings under contrasting climate and light conditions, and assessed the influence of abiotic (climate, light conditions, soil properties) and biotic drivers (neighbouring vegetation) as well as seedling characteristics (species identity, age, spermatophyte type) on root trait variation at local and regional scales. Species differed significantly for some traits but differed even more strongly in multivariate trait syndromes, suggesting distinct below‐ground strategies. ITV was substantial but trait‐dependent, with maximum rooting depth and root‐to‐shoot ratio being the most variable (coefficient of variation >45%) and branching density the least variable. BTV was the primary driver of overall trait variation for three traits, explaining more than 60% of variation, whereas within‐plot ITV accounted for more than 50% of variation in the remaining four traits. Local drivers did not outweigh regional factors, and the overall explanatory power of measured drivers was limited, suggesting that fine‐scale heterogeneity, not captured in our study, may strongly influence root ITV. High ITV in most traits suggests substantial plasticity in roots, which may contribute to the adaptive capacity of seedlings facing climate change. Integrating this plasticity into mechanistic models is critical for predicting regeneration dynamics or root‐mediated ecosystem processes. We propose a set of guidelines for integrating root traits into comparative studies and models based on trait measurability and extent of ITV. We further highlight the need to account for the scale‐ and gradient‐intensity dependence of ITV–environment relationships. Read the free Plain Language Summary for this article on the Journal blog.

Authors

Institutions

Publication Details

Journal
Functional Ecology
Published
2026-09-09
DOI
https://doi.org/10.1111/1365-2435.70411
Primary Topic
Plant nutrient uptake and metabolism
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Intraspecific variability rivals interspecific differences in root traits of temperate tree seedlings

Monique Weemstra, Guillaume Lobet, Morgane Dendoncker, Olivier Villemaire‐Côté et al.
Functional Ecology
Plant nutrient uptake and metabolism
article

Intraspecific variability rivals interspecific differences in root traits of temperate tree seedlings

Monique Weemstra, Guillaume Lobet, Morgane Dendoncker, Olivier Villemaire‐Côté, Léa Darquié, Gabriel Asselin, Alison D. Munson, Audrey Maheu, Christian Messier, Nelson Thiffault, Isabelle Aubin, Anne Ola
article en

Abstract

Abstract Global change and associated disturbances are increasing the risk of regeneration failure for tree species in temperate forests. Seedlings are particularly vulnerable to water stress due to their shallow root systems, making below‐ground plasticity a potentially key component of species adaptive capacity. Quantifying root trait variability and its drivers can improve our understanding of regeneration success under increasingly warm and dry conditions. We quantified between species variation (BTV) and intraspecific variation (ITV) in seven root traits linked to water uptake—root‐to‐shoot ratio, maximum rooting depth, proportion of absorptive roots, specific root length, root tissue density, average absorptive root diameter and root branching density—for seedlings of seven common, co‐occurring tree species in forests of northeastern North America. We sampled seedlings under contrasting climate and light conditions, and assessed the influence of abiotic (climate, light conditions, soil properties) and biotic drivers (neighbouring vegetation) as well as seedling characteristics (species identity, age, spermatophyte type) on root trait variation at local and regional scales. Species differed significantly for some traits but differed even more strongly in multivariate trait syndromes, suggesting distinct below‐ground strategies. ITV was substantial but trait‐dependent, with maximum rooting depth and root‐to‐shoot ratio being the most variable (coefficient of variation >45%) and branching density the least variable. BTV was the primary driver of overall trait variation for three traits, explaining more than 60% of variation, whereas within‐plot ITV accounted for more than 50% of variation in the remaining four traits. Local drivers did not outweigh regional factors, and the overall explanatory power of measured drivers was limited, suggesting that fine‐scale heterogeneity, not captured in our study, may strongly influence root ITV. High ITV in most traits suggests substantial plasticity in roots, which may contribute to the adaptive capacity of seedlings facing climate change. Integrating this plasticity into mechanistic models is critical for predicting regeneration dynamics or root‐mediated ecosystem processes. We propose a set of guidelines for integrating root traits into comparative studies and models based on trait measurability and extent of ITV. We further highlight the need to account for the scale‐ and gradient‐intensity dependence of ITV–environment relationships. Read the free Plain Language Summary for this article on the Journal blog.

Functional Ecology
Canadian Forest Service (CA), Natural Resources Canada (CA), Université du Québec à Montréal (CA), Université du Québec en Outaouais (CA), Institut National de la Recherche Scientifique (CA), Centre de Géomatique du Québec (CA), Université Laval (CA), Wageningen University & Research (NL), UCLouvain (BE)
Climate action
Openalex Percentile: Top 12%
Plant nutrient uptake and metabolism
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.