4.6 Article

Xylem anatomy needs to change, so that conductivity can stay the same: xylem adjustments across elevation and latitude in Nothofagus pumilio

Journal

ANNALS OF BOTANY
Volume 125, Issue 7, Pages 1101-1112

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/aob/mcaa042

Keywords

Elevational gradient; latitudinal gradient; Nothofagus pumilio; vessel diameter distributions; vessel grouping; xylem anatomy

Categories

Funding

  1. Chilean Fondo Nacional de Desarrollo Cientifico y Tecnologico [FONDECYT] [1120171, 1160329]
  2. BBVA foundation
  3. Spanish MINECO [CGL2017-87309-P]
  4. Spanish MINECO [Juan de la Cierva-Incorporacion grant] [IJCI-2017-34052]
  5. Comunidad de Madrid [project REMEDINAL TE-CM] [S2018/EMT-4338]

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Background and Aims Plants have the potential to adjust the configuration of their hydraulic system to maintain its function across spatial and temporal gradients. Species with wide environmental niches provide an ideal framework to assess intraspecific xylem adjustments to contrasting climates. We aimed to assess how xylem structure in the widespread species Nothofagus pumilio varies across combined gradients of temperature and moisture, and to what extent within-individual variation contributes to population responses across environmental gradients. Methods We characterized xylem configuration in branches of N. pumilio trees at five sites across an 18 degrees latitudinal gradient in the Chilean Andes. sampling at four elevations per site. We measured vessel area, vessel density and the degree of vessel grouping. We also obtained vessel diameter distributions and estimated the xylem-specific hydraulic conductivity. Xylem traits were studied in the last five growth rings to account for within-individual variation. Key Results Xylem traits responded to changes in temperature and moisture, but also to their combination. Reductions in vessel diameter and increases in vessel density suggested increased safety levels with lower temperatures at higher elevation. Vessel grouping also increased under cold and dry conditions, but changes in vessel diameter distributions across the elevational gradient were site-specific. Interestingly, the estimated xylem-specific hydraulic conductivity remained constant across elevation and latitude. and an overwhelming proportion of the variance of xylem traits was due to within-individual responses to year-to-year climatic fluctuations, rather than to site conditions. Conclusions Despite conspicuous adjustments, xylem traits were coordinated to maintain a constant hydraulic function under a wide range of conditions. This, combined with the within-individual capacity for responding to year-to-year climatic variations. may have the potential to increase forest resilience against future environmental changes.

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