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Assessment of Day Time Anthesis Warming on Rice Cultivars under Varying Textured Sites of South-Western Punjab, India

DOI: 10.4236/as.2021.122008, PP. 112-127

Keywords: Rice, Soil Texture, Spikelet Sterility, Thermal Stress

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Abstract:

Rice production is highly influenced by the prevailing weather conditions, physico-chemical properties of the soil, the yielding potential of cultivars besides, several crop management practices and inputs. To understand the performance of the tiller production of various paddy cultivars under varying soil texture sites of the south-western Punjab, four rice cultivars viz., PR121 (V1), PAU201 (V2), PR128 (V3) and PR129 (V4) were grown at three different locations having soil texture from light to heavy. Sowing of nursery was completed between May 15, 2019 and May 23, 2019 however, seedlings were transplanted in the well prepared field during 05-20 June, 2019. Results of the present study clearly depicted the role of weather parameters on plant height, effective tillers, grain yield and spikelet sterility in the rice crop. High temperatures have detrimental effects on fertility of rice varieties, regardless the transplanting time. Among different rice cultivars, sterility was the lowest (17.8%) in PR121 and the highest 42.6% in PR129. Apart from the varietal differences, the lowest sterility 28.4% recorded in medium textured soil was lowered by 21.5% and 27.8% than light and high textured soils. Cultivar PR121 produced 3.9%, 7.7% and 15% higher grain yield than PR128, PAU201 and PR129, respectively. The response of anthesis period thermal stress on spikelet sterility should be considered to develop the temperature tolerant varieties for addressing the climate change issues.

References

[1]  Yoshida, S. (1981) Fundamentals of Rice Crop Science. International Rice Research Institute, LosBaños, 48-269.
[2]  Zhong, G.R. (1991) Advance in Research on Cold Tolerance in Rice. Jiangsu Journal of Agricultural Sciences, 7, 52-56.
[3]  Nahar, K., Hasanuzzaman, M. and Majumder, R.R. (2009) Effect of Low Temperature Stress in Transplanted Aman Rice Cultivars Mediated by Different Transplanting Dates. Academic Journal of Plant Sciences, 2, 132-138.
[4]  Shelley, I.J., Takahashi-Nosaka, M., Kano-Nakata, M., Haque, M.S. and Inukai, Y. (2016) Rice Cultivation in Bangladesh: Present Scenario, Problems and Prospects. J. Intl. Agric. Dev, 14, 20-29.
[5]  Amin, A.K.M.R. (2004) Effect of Cold Temperature and Agronomic Management on the Spikelet Sterility and Yield of Boro Rice. Ph.D. Thesis, Bangladesh Agricultural University, Mymensingh.
[6]  Matsui, T., Omasa, K. and Horie, T. (1997) High Temperature-Induced Spikelet sterility of Japonica Rice at Fowering in Relation to Air Temperature, Humidity and Wind Velocity Conditions. Japanese Journal of Crop Science, 66, 449-455.
https://doi.org/10.1626/jcs.66.449
[7]  Stocker, T.F., Qin, D., Plattner, G.-K., Alexander, L.V., Allen, S.K. and Bindoff, N.L. (2013) Technical Summary In: Stocker, T.F., Qin, D., Plattner, G.-K., Tignor, M., Allen, S.K., Boschung, J., Nauels, A., Xia, Y., et al., Eds., Climate Change 2013: The Physical Science Basis. Cambridge University Press, Cambridge, New York.
[8]  Hakata, M., Kuroda, M., Miyashita, T., Yamaguchi, T., Kojima, M., Sakakibara, H., Mitsui, T. and Yamakawa, H. (2012) Suppression of α-Amylase Genes Improves Quality of Rice Grain Ripened under High Temperature. Plant Biotechnology Journal, 10, 1110-1117.
https://doi.org/10.1111/j.1467-7652.2012.00741.x
[9]  Mishra, S.K., Shekh, A.M., Pandey, V., Yadav, S.B. and Patel, H.R. (2015) Sensitivity Analysis of Four Wheat Cultivars to varying Photoperiod and Temperature at Different Phenological Stages Using WOFOST Model. Journal of Agrometeorology, 17, 74-79.
[10]  Morita, S., Wada, H. and Matsue, Y. (2016) Countermeasures for Heat Damage in Rice Grain Quality under Climate Change. Plant Production Science, 19, 1-11.
https://doi.org/10.1080/1343943X.2015.1128114
[11]  Horie, T., Matsui, T., Nakagawa, H. and Omasa, K. (1996) Effects of Elevated CO2 and Global Climate Change on Rice Yield in Japan. In: Omasa, K., Kai, K., Taoda, H., Uchijima, Z. and Yishino, M, Eds., Climate Change and Plants in East Asia, Springer-Verlag, Tokyo, 39-56.
https://doi.org/10.1007/978-4-431-66899-2_4
[12]  Cruz, R.V., Harasawa, H., Lal, M., Wu, S., Anokhin, Y., Punsalmaa, B., Honda, Y., Jafari, M., Li, C. and Huu Ninh, N. (2007) Climate Change 2007: Impacts, Adaptation and Vulnerability. Cambridge University Press, Cambridge, 469-506.
[13]  Satake, T. and Yoshida, S. (1978) High Temperature-Induced Sterility in Indica Rices at Fowering. Japanese Journal of Crop Science, 47, 6-17.
https://doi.org/10.1626/jcs.47.6
[14]  Osada, A., Sasiprapa, V., Rahong, M., Dhammanuvong, S. and Chakrabndhu, H. (1973) Abnormal Occurrence of Empty Grains of Indicia Rice Plants in the Dry, Hot Season in Thailand. Proceedings of the Crop Science Society of Japan, 42, 103-109.
https://doi.org/10.1626/jcs.42.103
[15]  Matsui, T., Omasa, K. and Horie, T. (2001) The Difference in Sterility due to High Temperatures during the Fowering Period among Japonica-Rice Varieties. Plant Production Science, 4, 90-93.
https://doi.org/10.1626/pps.4.90
[16]  Weerakoon, W.M.W., Maruyama, A. and Ohba, K. (2008) Impact of Humidity on Temperature-Induced Grain Sterility in Rice (Oryza sativa L.). Journal of Agronomy and Crop Science, 194, 135-140.
https://doi.org/10.1111/j.1439-037X.2008.00293.x
[17]  Matsui, T. and Omasa, K. (2002) Rice (Oryza sativa L.) Cultivars Tolerant to High Temperature at Fowering Anther Characteristics. Annals of Botany, 89, 683-687.
https://doi.org/10.1093/aob/mcf112
[18]  Pan, X., Qu, W. and Pan, X.B. (1998) Analysis on the Main Agronomic Characters and Discussion of High Yield Breeding of Early Indica Hybrid Rice. Indian Journal of Agronomy, 43, 68-70.
[19]  Om, H., Singh, O.P. and Joon, R.K. (1993) Effect of Time of Transplanting and Spacing on Basmati Rice. Haryana Journal of Agronomy, 9, 87.
[20]  Nayak, B.C., Dalei, B.B. and Choudhury, B.K. (2003) Response of Hybrid Rice (Oryza sativa) to Date of Planting, Spacing and Seedling Rate during Wet Season. Indian Journal of Agronomy, 48, 172-174.
[21]  Prasad, P.V.V., Boote, K.J., Allen, L.H., Sheehy, J.E. and Thomas, J.M.G. (2006) Species, Ecotype and Cultivar Differences in Spikelet Fertility and Harvest Index of Rice in Response to High Temperature Stress. Field Crops Research, 95, 398-411.
https://doi.org/10.1016/j.fcr.2005.04.008
[22]  Peng, S., Khush, G.S., Virk, P., Tang, Q. and Zou, Y. (2008) Progress in Ideotype Breeding to Increase Rice Yield Potential. Field Crops Research, 108, 32-38.
https://doi.org/10.1016/j.fcr.2008.04.001
[23]  Kaur N. and Kaur, P. (2016) Projected Climate Change under Different Scenarios in Central Region of Punjab, India. Journal of Agrometeorology, 18, 88-92.
[24]  Yang, J., Peng, S., Zhang, Z., Wang, Z., Visperas, R.M. and Zhu, Q. (2002) Grain and Dry Matter Yields and Partitioning of Assimilates in Japonica/Indicia Hybrid Rice. Crop Science, 42, 766-772.
https://doi.org/10.2135/cropsci2002.7660
[25]  Gourdji, S.M., Sibley, A.M. and Lobell, D.B. (2013) Global Crop Exposure to Critical High Temperatures in the Reproductive Period: Historical Trends and Future Projections. Environmental Research Letters, 8, Article ID: 024041.
https://doi.org/10.1088/1748-9326/8/2/024041
[26]  Teixeira, E.I., Fischer, G., van Velthuizen, H., Walter, C. and Ewert, F. (2013) Global Hot-Spots of Heat Stress on Agricultural Crops Due to Climate Change. Agricultural and Forest Meteorology, 170, 206-215.
https://doi.org/10.1016/j.agrformet.2011.09.002
[27]  Bheemanahalli, R., Sathishraj, R., Tack, J., Nalley, L.L., Muthurajan, R. and Jagadish, K.S. (2016) Temperature Thresholds for Spikelet Sterility and Associated Warming Impacts for Sub-Tropical Rice. Agricultural and Forest Meteorology, 221, 122-130.
https://doi.org/10.1016/j.agrformet.2016.02.003
[28]  Julia, C.m and Dingkuhn, M. (2013) Predicting Temperature Induced Sterility of Rice Spikelets Requires Simulation of Crop-Generated Microclimate. European Journal of Agronomy, 49, 50-60.
https://doi.org/10.1016/j.eja.2013.03.006
[29]  Li, H., Liu, L., Wang, Z., Yang, J. and Zhang, J. (2012) Agronomic and Physiological Performance of High-Yielding Wheat and Rice in the Lower Reaches of Yangtze River of China. Field Crops Research, 133, 119-129.
https://doi.org/10.1016/j.fcr.2012.04.005
[30]  Zhang, H., Chen, T.T., Liu, L.J., Wang, Z .Q., Yang, J.C. and Zhang, J.H. (2013) Performance in Grain Yield and Physiological Traits of Rice in the Yangtze River Basin of China during the Last 60 yr. Journal of Integrative Agriculture, 12, 57-66.
https://doi.org/10.1016/S2095-3119(13)60205-1
[31]  Laza, R.C., Peng, S., Akita, S. and Saka, H. (2004) Effect of Panicle Size on Grain Yield of IRRI-Released Indica Rice Cultivars in the Wet Season. Plant Production Science, 7, 271-276.
https://doi.org/10.1626/pps.7.271
[32]  Jiang, Y.H., Zhang, H.C., Zhao, K., Xu, J .W., Wei, H.H., Long, H.Y., Wang, W.T., Dai, Q.G., Huo, Z.Y., Xu, K., Wei, H.Y. and Guo, B.W. (2014) Difference in Yield and Its Components Characteristics of Different Type Rice Cultivars in the Lower Reaches of the Yangtze River. Chinese Journal of Rice Science, 28, 621-631. (In Chinese)
[33]  Ohsumi, A., Takai, T., Ida, M., Yamamoto, T., Arai-Sanoh, Y., Yano, M., Ando, T. and Kondo, M. (2011) Evaluation of Yield Performance in Rice Near-Isogenic Lines with Increased Spikelet Number. Field Crops Research, 120, 68-75.
https://doi.org/10.1016/j.fcr.2010.08.013
[34]  Endo-Higashi, N. and Izawa, T. (2011) Flowering time Genes Heading Date 1 and Early Heading Date 1 Together Control Panicle Development in Rice. Plant and Cell Physiology, 52, 1083-1094.
https://doi.org/10.1093/pcp/pcr059
[35]  Shiratsuchi, H., Ohdaira, Y. and Takanashi, J.I. (2007) Relationship between Dry Weight at Heading and the Number of Spikelets on Individual Rice Tillers. Plant Production Science, 10, 430-441.
https://doi.org/10.1626/pps.10.430
[36]  Shi, W., Muthurajan, R., Rahman, H., Selvam, J., Peng, S.B. and Zou, Y.B. (2013) Source-Sink Dynamics and Proteomic Reprogramming under Elevated Night Temperature and Their Impact on Rice Yield and Grain Quality. New Phytologist, 197, 825-837.
https://doi.org/10.1111/nph.12088
[37]  Dou, F., Soriano, J., Tabien, R.E. and Chen, K. (2016) Soil Texture and Cultivar Effects on Rice (Oryza sativa, L.) Grain Yield, Yield Components and Water Productivity in Three Water Regimes. PLoS ONE, 11, e0150549.
https://doi.org/10.1371/journal.pone.0150549
[38]  Yuan, L.P. (2012) Conceiving of Breeding Further Super-High Yield Hybrid Rice. Hybrid Rice, 77, 1-2 (In Chinese with English abstract)
[39]  Khush, G.S. (1997) Origin, Dispersal, Cultivation and Variation of Rice. In: Sasaki T. and Moore, G., Eds., Oryza: From Molecule to Plant, Springer, Dordrecht, 25-34.
https://doi.org/10.1007/978-94-011-5794-0_3
[40]  Jagadish, S.V.K., Muthurajan, R., Oane, R., Wheeler, T.R., Heuer, S., Bennett, J. and Craufurd, P.Q. (2010) Physiological and Proteomic Approaches to Address Heat tolerance during Anthesis in Rice (Oryza sativa L.). Journal of Experimental Botany, 61, 143-156.
https://doi.org/10.1093/jxb/erp289
[41]  Sathishraj, R., Bheemanahalli, R., Ramachandran, M., Dingkuhn, M., Muthurajan, R. and Krishna, J.S. (2015) Capturing Heat Stress Induced Variability in Spikelet Sterility Using Panicle: Leaf and Air Temperature under Field Conditions. Field Crops Research, 190, 10-17.
https://doi.org/10.1016/j.fcr.2015.10.012
[42]  Yoshida, S., Satake T. and Mackill, D. (1981) High Temperature Stress. No. 67, International Rice Research Institute, LosBaños, 1-15.
[43]  Jagadish, S.V.K., Craufurd, P.Q. and Wheeler, T.R. (2007) High Temperature Stress and Spikelet Fertility in Rice (Oryza sativa L.). Journal of Experimental Botany, 58, 1627-1635.
https://doi.org/10.1093/jxb/erm003
[44]  Matsui, T. and Kagata, H. (2003) Characteristics of Floral Organs Related to Reliable Self Pollination in Rice (Oryza sativa L.). Annals of Botany, 91, 473-477.
https://doi.org/10.1093/aob/mcg045
[45]  Matsui, T., Omasa, K. and Horie, T. (2000) High Temperature at Fowering Inhibits Swelling of Pollen Grains, a Driving Force for Thecae Dehiscence in Rice (Oryza sativa L.). Plant Production Science, 3, 430-434.
https://doi.org/10.1626/pps.3.430
[46]  Kakani, V.G., Prasad, P.V.V., Craufurd, P.Q. and Wheeler, T.R. (2002) Response of in Vitro Pollen Germination and Pollen Tube Growth of Groundnut (Arachis hypogaea L.) Genotypes to Temperature. Plant, Cell & Environment, 25, 1651-1661.
https://doi.org/10.1046/j.1365-3040.2002.00943.x
[47]  Meng, L.S., Wang, Y.B., Loake, G.J. and Jiang, J.H. (2016) Seed Embryo Development Is Regulated via an AN3-MINI3 Gene Cascade. Frontiers in Plant Science, 7, 1645.
https://doi.org/10.3389/fpls.2016.01645
[48]  Visperas, R.M., Peng, S., Khush, G.S. and Pamplona, A. (2000) Relative Performance of New Plant Type Lines during the Dry and Wet Seasons. Philippine Journal of Crop Science, 25, 51.

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