This study investigated the effects of near-ambient ozone (O 3 ) and future predicted CO 2 concentrations on disease severity and progress of leaf rust (LR) on wheat, caused by Puccinia triticina Eriks. (Pt). Four winter wheat cultivars (Coker 9553, NC Neuse, Jamestown, and NuEast) with differential LR resistance were assessed for their O 3 responses to four O 3 treatments (sub-ambient, 50, 75, and 100 ppb O 3 ) in continuously stirred tank reactors (CSTRs) located in the greenhouse. Ozone-induced foliar symptoms on the cultivars were either absent or negligible at a near-ambient ozone concentration (50 ppb), but all cultivars showed visible injury symptoms at high O 3 concentrations. The effects of long-term near-ambient O 3 (50 ppb) and elevated CO 2 (570 ppm) on disease severity and disease components were also assessed on flag leaves after plants were inoculated with Pt race ‘MBTNB’ at GS 39-40 Zadoks in outdoor-plant environment chambers (OPECs). Infection was initiated by aerosol application of urediniospores following dew formation on leaves under high humidity conditions in the OPECs. Rust resistant cultivar NuEast did not exhibit LR symptoms under gas treatments. Near-ambient O 3 singly or combined with elevated CO 2 (570 ppm) increased disease severity and pustule size, and accelerated pustule formation on the susceptible cultivar Coker 9553. However, elevated CO 2 alone had no significant effect on disease severity. This study suggests that the interactive effect of greenhouse gases on wheat rust diseases could lead to enhanced rust epidemics.
Mashaheet et al. (Thu,) studied this question.