Climate change impacts on the ecology of Fusarium graminearum species complex and susceptibility of wheat to Fusarium head blight: a review

被引:90
作者
Vaughan, M. [1 ]
Backhouse, D. [2 ]
Del Ponte, E. M. [3 ]
机构
[1] ARS, USDA, Mycotoxin Prevent & Appl Microbiol Unit, Natl Ctr Agr Utilizat Res, 1815 North Univ St, Peoria, IL 61604 USA
[2] Univ New England, Sch Environm & Rural Sci, Armidale, NSW 2351, Australia
[3] Univ Fed Vicosa, Dept Fitopatol, Campus Univ S-N, BR-36570000 Vicosa, MG, Brazil
关键词
Triticum aestivum; global change; wheat scab; trichothecene; deoxynivalenol; ELEVATED CARBON-DIOXIDE; GIBBERELLA-ZEAE; SALICYLIC-ACID; F-ASIATICUM; EAR BLIGHT; DEOXYNIVALENOL ACCUMULATION; GENETIC DIVERSITY; PLANT-DISEASE; PREVIOUS CROP; SOIL-EROSION;
D O I
10.3920/WMJ2016.2053
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Fusarium head blight (FHB) of wheat, caused mainly by a few members of the Fusarium graminearum species complex (FGSC), is a major threat to agricultural grain production, food safety, and animal health. The severity of disease epidemics and accumulation of associated trichothecene mycotoxins in wheat kernels is strongly driven by meteorological factors. The potential impacts of change in climate are reviewed from the perspective of the FGSC life cycle and host resistance mechanisms influenced by abiotic pressures at the ecological, physiological and molecular level. Alterations in climate patterns and cropping systems may affect the distribution, composition and load of FGSC inoculum, but quantitative information is lacking regarding the differential responses among FGSC members. In general, the coincidence of wet and warm environment during flowering enhances the risk of FHB epidemics, but the magnitude and direction of the change in FHB and mycotoxin risk will be a consequence of a multitude of effects on key processes affecting inoculum dynamics and host susceptibility. Rates of residue decomposition, inoculum production and dispersal may be significantly altered by changes in crop rotations, atmospheric carbon dioxide concentration ([CO2]), temperature and precipitation patterns, but the impact may be much greater for regions where inoculum is more limited, such as temperate climates. In regions of non-limiting inoculum, climate change effects will likely be greater on the pathogenic rather than on the saprophytic phase. Although the mechanisms by which abiotic stress influences wheat defences against Fusarium species are unknown, available data would suggest that wheat may be more susceptible to Fusarium infection under future climate conditions. Additional research in this area should be a priority so that breeding efforts and climate resilient management strategies can be developed.
引用
收藏
页码:685 / 700
页数:16
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