Literature DB >> 30588740

Tree rings provide no evidence of a CO2 fertilization effect in old-growth subalpine forests of western Canada.

Oleksandra Hararuk1,2, Elizabeth M Campbell3, Joseph A Antos4, Roberta Parish5.   

Abstract

Atmospheric CO2 concentrations are now 1.7 times higher than the preindustrial values. Although photosynthetic rates are hypothesized to increase in response to rising atmospheric CO2 concentrations, results from in situ experiments are inconsistent in supporting a CO2 fertilization effect of tree growth. Tree-ring data provide a historical record of tree-level productivity that can be used to evaluate long-term responses of tree growth. We use tree-ring data from old-growth, subalpine forests of western Canada that have not had a stand-replacing disturbance for hundreds of years to determine if growth has increased over 19th and 20th centuries. Our sample consisted of 5,858 trees belonging to five species distributed over two sites in the coastal zone and two in the continental climate of the interior. We calculated annual increments in tree basal area, adjusted these increments for tree size and age, and tested whether there was a detectable temporal trend in tree growth over the 19th and 20th centuries. We found a similar pattern in 20th century growth trends among all species at all sites. Growth during the 19th century was mostly stable or increasing, with the exception of one of the coastal sites, where tree growth was slightly decreasing; whereas growth during the 20th century consistently decreased. The unexpected decrease in growth during the 20th century indicates that there was no CO2 fertilization effect on photosynthesis. We compared the growth trends from our four sites to the trends simulated by seven Earth System Models, and saw that most of the models did not predict these growth declines. Overall, our results indicate that these old-growth forests are unlikely to increase their carbon storage capacity in response to rising atmospheric CO2 , and thus are unlikely to contribute substantially to offsetting future carbon emissions.
© 2018 John Wiley & Sons Ltd.

Entities:  

Keywords:  CO2 fertilization effect; climate change; dendroecology; global warming; old-growth forests; tree growth; tree rings

Year:  2018        PMID: 30588740     DOI: 10.1111/gcb.14561

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  4 in total

1.  Adding Tree Rings to North America's National Forest Inventories: An Essential Tool to Guide Drawdown of Atmospheric CO2.

Authors:  Margaret E K Evans; R Justin DeRose; Stefan Klesse; Martin P Girardin; Kelly A Heilman; M Ross Alexander; André Arsenault; Flurin Babst; Mathieu Bouchard; Sean M P Cahoon; Elizabeth M Campbell; Michael Dietze; Louis Duchesne; David C Frank; Courtney L Giebink; Armando Gómez-Guerrero; Genaro Gutiérrez García; Edward H Hogg; Juha Metsaranta; Clémentine Ols; Shelly A Rayback; Anya Reid; Martin Ricker; Paul G Schaberg; John D Shaw; Patrick F Sullivan; Sergio Armando Villela GaytÁn
Journal:  Bioscience       Date:  2021-12-08       Impact factor: 8.589

2.  Joint effects of climate, tree size, and year on annual tree growth derived from tree-ring records of ten globally distributed forests.

Authors:  Kristina J Anderson-Teixeira; Valentine Herrmann; Christine R Rollinson; Bianca Gonzalez; Erika B Gonzalez-Akre; Neil Pederson; M Ross Alexander; Craig D Allen; Raquel Alfaro-Sánchez; Tala Awada; Jennifer L Baltzer; Patrick J Baker; Joseph D Birch; Sarayudh Bunyavejchewin; Paolo Cherubini; Stuart J Davies; Cameron Dow; Ryan Helcoski; Jakub Kašpar; James A Lutz; Ellis Q Margolis; Justin T Maxwell; Sean M McMahon; Camille Piponiot; Sabrina E Russo; Pavel Šamonil; Anastasia E Sniderhan; Alan J Tepley; Ivana Vašíčková; Mart Vlam; Pieter A Zuidema
Journal:  Glob Chang Biol       Date:  2021-10-30       Impact factor: 13.211

3.  A physiology-based Earth observation model indicates stagnation in the global gross primary production during recent decades.

Authors:  Torbern Tagesson; Feng Tian; Guy Schurgers; Stephanie Horion; Robert Scholes; Anders Ahlström; Jonas Ardö; Alvaro Moreno; Nima Madani; Stefan Olin; Rasmus Fensholt
Journal:  Glob Chang Biol       Date:  2020-12-06       Impact factor: 10.863

4.  Increased water use efficiency leads to decreased precipitation sensitivity of tree growth, but is offset by high temperatures.

Authors:  Kelly A Heilman; Valerie M Trouet; Soumaya Belmecheri; Neil Pederson; Melissa A Berke; Jason S McLachlan
Journal:  Oecologia       Date:  2021-03-20       Impact factor: 3.225

  4 in total

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