Stability of rice pollination in the field under hot and dry conditions in the Riverina region of New South Wales, Australia

被引:84
作者
Matsui, Tsutomu
Kobayasi, Kazuhiro
Yoshimoto, Mayumi
Hasegawa, Toshihiro
机构
[1] Natl Inst Agroenvironm Sci, Tsukuba, Ibaraki 3058604, Japan
[2] Kyoto Univ, Grad Sch Agr, Expt Farm, Takatsuki, Osaka 5690096, Japan
[3] Shimane Univ, Fac Life & Environm Sci, Matsue, Shimane 6908504, Japan
关键词
anther dehiscence; floret sterility; heat stress; oryaza saliva L; transpirational cooling;
D O I
10.1626/pps.10.57
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Even Under extremely hot (40 degrees C) conditions during anthesis, heat-induced floret sterility does not appear to be a serious issue for Australian rice growers. This contradicts previously reported temperature thresholds for floret sterility. To determine the factors associated with stable rice production tinder hot and dry conditions in the Riverina region of New South Wales (Australia), we examined rice (cv. 'Langi') pollination at different distances from the windward edge of a paddy field and its association with canopy microclimate. With an air temperature of 34.5 degrees C and a relative humidity of 20.7% during anthesis, poor pollination of florets occurred at the windward edge, but pollination remained stable farther from the edge. The temperature difference between the air bind the panicles in the canopy reached as high as 6.8 degrees C under these conditions because of low humidity and strong transpirational cooling. Moreover, the length of the dehiscence at the base of the thecae during anthesis was long; this is a desirable trait for heat tolerance. The long basal dehiscence of the thecae of this cultivar and the lower panicle temperatures relative to the ambient temperature caused by high transpirational cooling appear to be the key factors responsible for stable pollination under the extremely high temperatures of the Riverina region.
引用
收藏
页码:57 / 63
页数:7
相关论文
共 18 条
[1]  
Angus J., 1997, FIELD CROPS RES, V52, P286
[2]   Comparison of leaf, spike, peduncle and canopy temperature depression in wheat under heat stress [J].
Ayeneh, A ;
van Ginkel, M ;
Reynolds, MP ;
Ammar, K .
FIELD CROPS RESEARCH, 2002, 79 (2-3) :173-184
[3]  
Horie T., 1996, Climate change and plants in East Asia., P39
[4]  
Kim HY, 1996, JPN J CROP SCI, V65, P644, DOI 10.1626/jcs.65.644
[5]   Effects of elevated CO2 concentration and high temperature on growth and yield of rice [J].
Kim, HY ;
Horie, T ;
Nakagawa, H ;
Wada, K .
JAPANESE JOURNAL OF CROP SCIENCE, 1996, 65 (04) :634-643
[6]   Mechanism of anther dehiscence in rice (Oryza sativa L.) [J].
Matsui, T ;
Omasa, K ;
Horie, T .
ANNALS OF BOTANY, 1999, 84 (04) :501-506
[7]   Correlation between viability of pollination and length of basal dehiscence of the theca in rice under a hot-and-humid condition [J].
Matsui, T ;
Kobayasi, K ;
Kagata, H ;
Horie, T .
PLANT PRODUCTION SCIENCE, 2005, 8 (02) :109-114
[8]   The difference in sterility due to high temperatures during the flowering period among japonica-rice varieties [J].
Matsui, T ;
Omasa, K ;
Horie, T .
PLANT PRODUCTION SCIENCE, 2001, 4 (02) :90-93
[9]  
Matsui Tsutomu, 1999, Plant Production Science, V2, P196
[10]   Characteristics of floral organs related to reliable self-pollination in rice (Oryza sativa L.) [J].
Matsui, Tsutomu ;
Kagata, Hisashi .
ANNALS OF BOTANY, 2003, 91 (04) :473-477