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Benefits of increasing transpiration efficiency in wheat under elevated CO 2 for rainfed regions

Brendan Christy; Sabine Tausz‐Posch; Michael Tausz; Richard Richards; Greg Rebetzke; Anthony Condon; Terry McLean; Glenn Fitzgerald; Maryse Bourgault; Garry O'Leary
Global Change Biology · Vol. 24, Issue 5 · pp. 1965-1977 · 2018

Abstract

Higher transpiration efficiency ( TE ) has been proposed as a mechanism to increase crop yields in dry environments where water availability usually limits yield. The application of a coupled radiation and TE simulation model shows wheat yield advantage of a high‐ TE cultivar (cv. Drysdale) over its almost identical low‐ TE parent line (Hartog), from about −7 to 558 kg/ha (mean 187 kg/ha) over the rainfed cropping region in Australia (221–1,351 mm annual rainfall), under the present‐day climate. The smallest absolute yield response occurred in the more extreme drier and wetter areas of the wheat belt. However, under elevated CO 2 conditions, the response of Drysdale was much greater overall, ranging from 51 to 886 kg/ha (mean 284 kg/ha) with the greatest response in the higher rainfall areas. Changes in simulated TE under elevated CO 2 conditions are seen across Australia with notable increased areas of higher TE under a drier climate in Western Australia, Queensland and parts of New South Wales and Victoria. This improved efficiency is subtly deceptive, with highest yields not necessarily directly correlated with highest TE . Nevertheless, the advantage of Drysdale over Hartog is clear with the benefit of the trait advantage attributed to TE ranging from 102% to 118% (mean 109%). The potential annual cost‐benefits of this increased genetic TE trait across the wheat growing areas of Australia (5 year average of area planted to wheat) totaled AUD 631 MIL (5‐year average wheat price of AUD /260 t) with an average of 187 kg/ha under the present climate. The benefit to an individual farmer will depend on location but elevated CO 2 raises this nation‐wide benefit to AUD 796 MIL in a 2°C warmer climate, slightly lower ( AUD 715 MIL ) if rainfall is also reduced by 20%.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2018-05-01
Publication Year2018
Volume24
Issue5
Pages1965-1977
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.14052
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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