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Growing season length enhances black spruce carbon uptake, whereas summer aridity constrains xylem biomass investment: Evidence from wood anatomy and carbon fluxes
Journal article   Open access   Peer reviewed

Growing season length enhances black spruce carbon uptake, whereas summer aridity constrains xylem biomass investment: Evidence from wood anatomy and carbon fluxes

G Genovese, A Rita, A Saracino, Leonardo Montagnani, Enrico Tomelleri, A Collalti, PF Puchi, W Helgason and D Castagneri
Environmental and Experimental Botany, Vol.248, pp.1-13
248
2026
Handle:
https://hdl.handle.net/10863/52541

Abstract

Carbon allocation Wood anatomical proxies GPP Xylem biomass Tree ring Picea mariana
Accurately projecting future forest carbon (C) sinks requires insight into how warming and prolonged growing seasons alter C uptake and the formation of woody biomass. To assess climate-growth relationships and C allocation patterns, tree-ring width (TRW) has been widely used as a proxy for woody biomass growth. However, its reliability for tracking C flux dynamics remains unclear. We analysed a 22-year series of eddy-covariance-derived gross primary productivity (GPP) alongside multiple quantitative wood anatomy proxies of biomass growth in a boreal black spruce ( Picea mariana Mill.) forest in Canada. We observed different climate sensitivity in both C uptake, mostly associated with the growing season metrics (GSMs) onset and length, and C allocation to woody biomass, influenced by summer atmospheric and soil aridity. We found that xylem cell number, which primarily determines TRW, showed limited sensitivity to inter-annual GPP variations, suggesting that the variability in cell production may predominantly be influenced by sink-related processes. However, anatomical traits linked to C allocation to the cell wall (e.g. the cell wall area) showed positive associations with seasonal GPP (Pseudo R2 = 0.33, p < 0.01), reflecting a more direct link to current photosynthetic supply (C source-related process). Therefore, cell biomass proxies were more effective than TRW at detecting tree responses to inter-annual shifts in C resources. We demonstrate the potential of a wood anatomical approach for disentangling complex climate influence on forest C sink- and source-related processes. This can provide a more mechanistic basis for improving C cycle models under environmental changes.
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url
https://doi.org/10.1016/j.envexpbot.2026.106402View

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