Screening soybean genotypes for high temperature tolerance by in vitro pollen germination, pollen tube length, reproductive efficiency and seed yield

被引:20
作者
Jumrani K. [1 ]
Bhatia V.S. [1 ]
Pandey G.P. [2 ]
机构
[1] Indian Institute of Soybean Research, Khandwa Road, Indore
[2] School of Life Sciences, DAVV, Khandwa Road, Indore
来源
Indian Journal of Plant Physiology | 2018年 / 23卷 / 1期
关键词
Pollen germination; Reproductive efficiency; Soybean; Temperature; Yield;
D O I
10.1007/s40502-018-0360-1
中图分类号
学科分类号
摘要
High temperature stress is a major environmental stress and there are limited studies elucidating the impact of high day and night time temperature on reproductive processes in soybean. Twelve soybean genotypes were grown at day/night temperatures of 30/22, 34/24, 38/26 and 42/28 °C with an average temperature of 26, 29, 32 and 35 °C, respectively under green-house conditions. High temperature stress significantly increased duration of flowering and decreased number of flowers and pods formed as compared to ambient temperature. When plants were grown at elevated temperature pollen germination, pollen size and pollen tube length were declined leading to reduced reproductive efficiency which ultimately resulted reduction in seed yield. The average seed yield was maximum (13.2 g/plant) in plants grown under ambient temperature condition. Seed yield was declined by 8, 14, 51 and 65% as the plants were grown at 30/22, 34/24, 38/26 and 42/28 °C as compared to plants grown under ambient temperature conditions, respectively. The genotypes such as NRC 7 and EC 538828 showed less reduction in yield and stable reproductive biology as compared to other genotypes. It is concluded that for heat tolerance in soybean, breeding efforts needs to be focused on improving the reproductive efficiency. © 2018, Indian Society for Plant Physiology.
引用
收藏
页码:77 / 90
页数:13
相关论文
共 37 条
[11]  
Gross Y., Kigel J., Differential sensitivity to high temperature of stages in the reproductive development of common bean (Phaseolus vulgaris L.), Field Crops Research, 36, pp. 201-212, (1994)
[12]  
Hedhly A., Hormaza J.I., Herrero M., Global warming and sexual plant reproduction, Trends in Plant Science, 14, pp. 30-36, (2009)
[13]  
Huan F., Lizhe A., Ling Ling T., Zong Dong H., Xunling W., Effect of enhanced ultraviolet-B radiation on pollen germination and tube growth of 19 Taxa in vitro, Environmental and Experimental Botany, 43, pp. 45-53, (2000)
[14]  
Summary for policymakers, Climate Change: The Physical Science Basis. Contribution of Working Group I to The Fifth Assessment Report of The Intergovernmental Panel on Climate Change, (2013)
[15]  
Jagadish S.V.K., Craufurd P.Q., Wheeler T.R., High temperature stress and spikelet fertility in rice (Oryza sativa L.), Journal of Experimental Botany, 58, pp. 1627-1635, (2007)
[16]  
Jumrani K., Bhatia V.S., Impact of elevated temperatures on growth and yield of chickpea (Cicer arietinum L.), Field Crops Research, 164, pp. 90-97, (2014)
[17]  
Jumrani K., Bhatia V.S., Pandey G.P., Impact of elevated temperatures on specific leaf weight, stomatal density, photosynthesis and chlorophyll fluorescence in soybean, Photosynthesis Research, 131, pp. 333-350, (2017)
[18]  
Kakani V.G., Prasad P.V.V., Craufurd P.Q., Wheeler T.R., Response of in vitro pollen germination and pollen tube growth of groundnut (Arachis hypogaea L.) genotype to temperature, Plant, Cell and Environment, 25, pp. 1651-1661, (2002)
[19]  
Kakani V.G., Reddy K.R., Koti S., Wallace T.P., Prasad P.V.V., Reddy V.R., Zhao D., Differences in in vitro pollen germination and pollen tube growth of cotton cultivars in response to high temperature, Annals of Botany, 96, pp. 59-67, (2005)
[20]  
Koti S., Reddy K.R., Kakani V.G., Zhao D., Reddy V.R., Soybean (Glycine max) pollen germination characteristics, flower and pollen morphology in response to enhanced ultraviolet-B radiation, Annals of Botany, 94, pp. 855-864, (2004)