Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/37448
Appears in Collections:Biological and Environmental Sciences Journal Articles
Peer Review Status: Refereed
Title: Forest age rivals climate to explain reproductive allocation patterns in forest ecosystems globally
Author(s): Ward, Rachel E
Zhang-Zheng, Huanyuan
Abernethy, Kate
Adu-Bredu, Stephen
Arroyo, Luzmilla
Bailey, Andrew
Barlow, Jos
Berenguer, Erika
Chesini-Rossi, Liana
Cho, Percival
Dahlsjo, Cecilia A L
Carvalho das Neves, Eder
de Oliveira Sales, Bianca
Farfan-Rios, William
Nunes Ferreira, Joice
Contact Email: k.a.abernethy@stir.ac.uk
Keywords: climate
ecosystem modelling
forest age
forest ecosystems
forest regeneration
reproductive allocation
soin fertility
Issue Date: Aug-2025
Date Deposited: 4-Aug-2025
Citation: Ward RE, Zhang-Zheng H, Abernethy K, Adu-Bredu S, Arroyo L, Bailey A, Barlow J, Berenguer E, Chesini-Rossi L, Cho P, Dahlsjo CAL, Carvalho das Neves E, de Oliveira Sales B, Farfan-Rios W & Nunes Ferreira J (2025) Forest age rivals climate to explain reproductive allocation patterns in forest ecosystems globally.
Abstract: Forest allocation of net primary productivity (NPP) to reproduction (carbon required for flowers, fruits, and seeds) is poorly quantified globally, despite its critical role in forest regeneration and a well-supported trade-off with allocation to growth. Here, we present the first global synthesis of a biometric proxy for forest reproductive allocation (RA) across environmental and stand age gradients from a compiled dataset of 824 observations across 393 sites. We find that ecosystem-scale RA increases ~60% from boreal to tropical forests. Climate shows important non-linear relationships with RA, but is not the sole predictor. Forest age effects are comparable to climate in magnitude (MAT: ß = 0.24, p = 0.021; old growth forest: ß = 0.22, p < 0.001), while metrics of soil fertility show small but significant relationships with RA (soil pH: ß = 0.07, p = 0.001; soil N: ß = −0.07, p = 0.001). These results provide strong evidence that ecosystem-scale RA is mediated by climate, forest age, and soil conditions, and is not a globally fixed fraction of positive NPP as assumed by most vegetation and ecosystem models. Our dataset and findings can be used by modellers to improve predictions of forest regeneration and carbon cycling.
DOI Link: 10.1111/ele.70191
Rights: © 2025 The Author(s). Ecology Letters published by John Wiley & Sons Ltd. This article has been contributed to by U.S. Government employees and their work is in the public domain in the USA. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
Notes: Additional authors: Renata Freitag, Cécile Girardin, Walter Huaraca Huasco, Carlos A. Joly, Yadvinder Malhi, Beatriz Marimon, Ben Hur Marimon Junior, Alexandra C. Morel, Helene C. Muller-Landau, Karine da Silva Peixoto, Simone Reis, Terhi Riutta, Norma Salinas, Marina Seixas, Miles R. Silman, Lara M. Kueppers
Licence URL(s): http://creativecommons.org/licenses/by/4.0/

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