Elevated Atmospheric Carbon Dioxide Concentrations Amplify Alternaria alternata Sporulation and Total Antigen Production

被引:89
|
作者
Wolf, Julie [1 ]
O'Neill, Nichole R. [2 ]
Rogers, Christine A. [3 ]
Muilenberg, Michael L. [3 ]
Ziska, Lewis H. [2 ]
机构
[1] Univ Maryland, Dept Environm Sci & Technol, College Pk, MD 20742 USA
[2] Agr Res Serv, USDA, Beltsville Agr Res Ctr, Beltsville, MD USA
[3] Univ Massachusetts, Dept Publ Hlth, Amherst, MA 01003 USA
关键词
allergic rhinitis; Alternaria alternata; asthma; Cladosporium phlei; elevated atmospheric carbon dioxide (CO2); fungal antigenic protein; fungal sporulation; global climate change; plant carbon-to-nitrogen ratio (C:N); timothy grass (Phleum pratense); TO-NITROGEN RATIO; CLIMATE-CHANGE; PLANT-GROWTH; US HOMES; CO2; ASTHMA; CONIDIATION; ALLERGEN; RAGWEED; POLLEN;
D O I
10.1289/ehp.0901867
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
BACKGROUND: Although the effect of elevated carbon dioxide (CO2) concentration on pollen production has been established in some plant species, impacts on fungal sporulation and antigen production have not been elucidated. OBJECTIVE: Our purpose was to examine the effects of rising atmospheric CO2 concentrations on the quantity and quality of fungal spores produced on timothy (Phleum pratense) leaves. METHODS: Timothy plants were grown at four CO2 concentrations (300, 400, 500, and 600 mu mol/mol). Leaves were used as growth substrate for Alternaria alternata and Cladosporium phlei. The spore abundance produced by both fungi, as well as the size (microscopy) and antigenic protein content (ELISA) of A. alternata, were quantified. RESULTS: Leaf carbon-to-nitrogen ratio was greater at 500 and 600 mu mol/mol, and leaf biomass was greater at 600 mu mol/mol than at the lower CO2 concentrations. Leaf carbon-to-nitrogen ratio was positively correlated with A. alternata spore production per gram of leaf but negatively correlated with antigenic protein content per spore. At 500 and 600 mu mol/mol CO2 concentrations, A. alternata produced nearly three times the number of spores and more than twice the total antigenic protein per plant than at lower concentrations. C. phlei spore production was positively correlated with leaf carbon-to-nitrogen ratio, but overall spore production was much lower than in A. alternata, and total per-plant production did not vary among CO2 concentrations. CONCLUSIONS: Elevated CO2 concentrations often increase plant leaf biomass and carbon-to-nitrogen ratio. Here we demonstrate for the first time that these leaf changes are associated with increased spore production by A. alternata, a ubiquitous allergenic fungus. This response may contribute to the increasing prevalence of allergies and asthma.
引用
收藏
页码:1223 / 1228
页数:6
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