The influence of increasing temperature and CO2 on Fusarium crown rot susceptibility of wheat genotypes at key growth stages

被引:0
作者
P. Melloy
E. Aitken
J. Luck
S. Chakraborty
F. Obanor
机构
[1] CSIRO Plant Industry,School of Agriculture and Food Sciences
[2] The University of Queensland,School of Agriculture and Food Sciences
[3] The University of Queensland,CRC Plant Biosecurity, 11 The University of Melbourne
[4] Burnley Campus,undefined
来源
European Journal of Plant Pathology | 2014年 / 140卷
关键词
Crown rot; Carbon-dioxide; Plant-pathogen interaction; Temperature; Fungal biomass;
D O I
暂无
中图分类号
学科分类号
摘要
Despite recent reports advancing our understanding of climate change on plant diseases, uncertainty remains concerning how host and pathogen interactions are changed by increases in atmospheric carbon-dioxide (CO2) and temperature. This study has observed crown rot inoculated and non-inoculated plants in three glasshouse environments comprising ambient CO2 with ambient temperature (E1), elevated CO2 with ambient temperature (E2) and elevated CO2 with warm temperatures (E3). The proportion of crown rot infected tillers (incidence), length of stem browning (severity) and biomass of Fusarium pseudograminearum in 16 wheat genotypes was destructively assessed at node development, anthesis, soft dough and crop maturity. Mean incidence, severity and Fusarium biomass was greater in E2, and all three measurements increased at a faster rate across plant development stages; E1 showed the lowest mean incidence and severity. Incidence and severity at each development stage was dependent on the environment each genotype was grown. The influence of genotype on Fusarium biomass at each development stage however was not seen to be dependent on environment. Irrespective of genotype plants with greater severity or relative Fusarium biomass showed lower plant dry weight at crop maturity in all environments with exception to E3, where CR severity did not exert a cost to plant dry weight. These results may allude to plant maturity and temperature-dependent resistance as effective mechanisms in building resistance to crown rot. Regardless of temperature, if crown rot symptoms and Fusarium biomass are to increase at elevated CO2 there is potential for a loss in crop production capability while boosting inoculum in crop stubble.
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页码:19 / 37
页数:18
相关论文
共 189 条
[1]  
Asseng S(2011)The impact of temperature variability on wheat yields Global Change Biology 17 997-1012
[2]  
Foster I(2002)Climatic analysis of the distribution of Fusarium graminearum, F. pseudograminearum and F. culmorum on cereals in Australia Australasian Plant Pathology 31 321-327
[3]  
Turner NC(1999)Growth and yield responses of spring wheat to increasing carbon dioxide, ozone and physiological stresses: a statistical analysis ‘ESPACE-wheat’ results European Journal of Agronomy 10 185-195
[4]  
Backhouse D(2011)Climate change and plant diseases Plant Pathology 60 1-1
[5]  
Burgess LW(2006)Pathogen population structure and epidemiology are keys to wheat crown rot and Fusarium head blight management Australasian Plant Pathology 35 643-655
[6]  
Bender J(2012)Plant adaptation to climate change-opportunities and priorities in breeding Crop & Pasture Science 63 251-268
[7]  
Hertstein U(2009)Climate change and the flowering time of annual crops Journal of Experimental Botany 60 2529-2539
[8]  
Black CR(2012)Climate change impact on crop growth and food production, and plant pathogens Canadian Journal of Plant Pathology 34 362-379
[9]  
Chakraborty S(2010)Elevated atmospheric carbon dioxide and ozone alter soybean diseases at SoyFACE Global Change Biology 16 320-330
[10]  
Chakraborty S(2011)Influence of atmospheric and climatic change on plant–pathogen interactions Plant Pathology 60 54-69