Adverse effect of increase in minimum temperature during early grain filling period on grain growth and quality in indica rice (Oryza sativa) cultivars
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Keywords:
Grain growth, Minimum temperature, Quality traits, RiceAbstract
Increasing global temperatures have a deterimental effect on rice quality besides leading to yield penalty. Past data shows that minimum temperature has increased more than maximum temperature in India as well as other parts of the world. The effect of this increase in mean minimum temperature on grain growth and quality of indica rice (Oryza sativa L.) cultivars is obscure. Our study submits the evaluation of grain quality of early, mid-early and medium duration indica rice cultivars to moderate increase in mean minimum temperature from anthesis to maturity in two seasons (kharif 2014 and 2015) . Early duration susceptible cultivars, Vandana and Parijat were significantly affected during the early phase of grain filling resulting in 4.6 and 6.4% decline in test weight and 12-18% in high density grains respectively, when the mean minimum temperatures were ≥ 25°C. Slower grain growth rate under elevated mean minimum temperature accounted for decrease in dry matter accumulation in these cultivars. In general, percentage chalkiness was less in all the indica cultivars. Head rice recovery was not affected but amylose content reduced in all cultivars with a significant effect on Bakal and Sahbhagi Dhan when minimum temperatures increased by more than 23°C. Rice cooking temperature determined by alkali spreading value was not stable across the environment in early duration cultivars, Vandana and Parijat. Increase in mean minimum temperature elicited the vulnerability of early duration indica cultivars, by adversely affecting quality traits like test weight, high density grains and gelatinization temperature.Downloads
References
Adu-Kwarteng E, Ellis W O, Oduro I and Manful J T. 2003. Rice grain quality: a comparison of local varieties with new varieties under study in Ghana. Food Control 14(7): 507–14. DOI: https://doi.org/10.1016/S0956-7135(03)00063-X
Alward R D, Detling J K and Milchunas D G. 1999. Grassland vegetation changes and nocturnal global warming. Science 283: 229–31. DOI: https://doi.org/10.1126/science.283.5399.229
Ambardekar A A, Siebenmorgen T J, Counce P A, Lanning S B and Mauromoustakos A. 2011. Impact of field-scale night time air temperatures during kernel development on rice milling quality. Field Crops Research 122: 179–85. DOI: https://doi.org/10.1016/j.fcr.2011.03.012
Ashida K, Iida S, and Yasui T. 2009. Morphological, physical, and chemical properties of grain and flour from chalky rice mutants. Cereal Chemistry 86: 225–31. DOI: https://doi.org/10.1094/CCHEM-86-2-0225
Barnabas B, Jager K and Feher A. 2008. The effect of drought and heat stress on reproductive processes in cereals. Plant, Cell and Environment 31: 11–38.
Braganza K, Karoly D J and Arblaster J M. 2004. Diurnal temperature range as an index of global climate change during the twentieth century. Geophysical Research Letters 31: L13217. DOI: https://doi.org/10.1029/2004GL019998
Chahine M T. 1992. The hydrological cycle and its influence on climate. Nature 359: 373–80. DOI: https://doi.org/10.1038/359373a0
Cooper N T W, Siebenmorgen T J and Counce P A. 2008. Effects of night time temperature during kernel development on rice physicochemical properties. Cereal Chemistry 85: 276–82. DOI: https://doi.org/10.1094/CCHEM-85-3-0276
Cruz N D and Khush G S. 2000. Rice grain quality evaluation procedures. Aromatic Rices, pp 15–29. Singh R K, Singh U S and Khush G S (Eds). Oxford and IBH Publishing Company Pvt Ltd, New Delhi.
Dai A, Del Genio A D and Fung I Y. 1997. Clouds, precipitation and temperature range. Nature 386: 665–6. DOI: https://doi.org/10.1038/386665b0
Dai Y Y, DingY F, Liu Z H, Wang Q S, Lim G H and Wang S H. 2009. Effects of elevated night temperature by far-infrared radiation at grain filling on grain quality of rice. Chinese Journal of Rice Science 23: 414–20.
Davy R, Esau I, Chernokulsky A, Outten S and Zilitinkevich S. 2016. Diurnal asymmetry to the observed global warming. International Journal of Climatology. DOI: https://doi.org/10.1002/joc.4688
Gallo K P, Easterling D R and Peterson T C. 1996. The influence of land use/land cover on climatological values of the diurnal temperature range. Journal of Climate 9: 2941–4. DOI: https://doi.org/10.1175/1520-0442(1996)009<2941:TIOLUC>2.0.CO;2
Henderson-Sellers A. 1992. Continental cloudiness changes this century. Geo Journal 27: 255–62. DOI: https://doi.org/10.1007/BF02482666
Hoshikawa K. 1967. Studies on the development in Rice 2. : Process of endosperm tissue formation with special reference to the enlargement of cells. Japanese Journal of Crop Science 36: 203–9. DOI: https://doi.org/10.1626/jcs.36.3_203
Huang Y, Dickinson R E and Chameides W L. 2006. Impact of aerosol indirect effect on surface temperature over East Asia. Proceedings of the National Academy of Sciences of the United States of America 103: 4 371–6. DOI: https://doi.org/10.1073/pnas.0504428103
INCCA. 2010. Climate change and India: A 4×4 assessment. Ministry of Environment and Forests, Government of India, New Delhi.
IPCC. 2013. Climate change 2013: the physical science basis. Summary for policy makers. Working group I contribution to the IPCC fifth assessment report. Stocker T F, Qin D, Plattner G K, Tignor M M B, Allen S K, Boschung J, Nauels A, Xia Y, Bex V and Midgley P M (Eds). Cambridge University Press, Cambridge, pp 1–33.
Jennings P R, Coffman W R and Kauffman H E. 1979. Grain quality. Rice Improvement, pp 101–20. International Rice Research Institute, Los Banos , Philippines.
Kaneko K, Sasaki M, Kuribayashi N, Suzuki H, Sasuga Y, Shiraya T, Inomata T, Itoh K, Balsam M and Mitsui T. 2016. Proteomic and glycomic characterization of rice chalky grains produced under moderate and high-temperature conditions in field system. Rice 9: 1–16. DOI: https://doi.org/10.1186/s12284-016-0100-y
Karl T R, Kukla G, Razuvayev V N, Changery M J, Quayle R G, Heim R R, Easterling D R and Fu C B. 1991. Global warming: Evidence for asymmetric diurnal temperature change. Geophysical Research Letters 18: 2 253–56. DOI: https://doi.org/10.1029/91GL02900
Kobata T and Uemuki N. 2004. High temperatures during the grain-filling period do not reduce the potential grain dry matter increase of rice. Agronomy Journal 96: 406–14. DOI: https://doi.org/10.2134/agronj2004.0406
Krishnan P and Rao A S. 2005. Effects of genotype and environment on seed yield and quality of rice. Journal of Agricultural Science 143: 283–92. DOI: https://doi.org/10.1017/S0021859605005496
Krishnan P, Ramakrishnan B, Raja Reddy K and Reddy V R. 2011. High-temperature effects on rice growth, yield, and grain quality. Advances in Agronomy 111: 87–208. DOI: https://doi.org/10.1016/B978-0-12-387689-8.00004-7
Lanning S B, Siebenmorgen T J, Counce P A, Ambardekar A A and Mauromoustakos A. 2011. Extreme nighttime air temperatures in 2010 impact rice chalkiness and milling quality. Field Crops Research 124: 132–6. DOI: https://doi.org/10.1016/j.fcr.2011.06.012
Lapitan V C, Brar D S, Abe T and Redona E D. 2007. Assessment of genetic diversity of Philippine rice cultivars carrying good quality traits using SSR markers. Breeding Science 57: 263–70. DOI: https://doi.org/10.1270/jsbbs.57.263
Li H, Chen Z, Hu M, Wang Z, Hua H, Yin C and Zeng H. 2011. Different effects of night versus day high temperature on rice quality and accumulation profiling of rice grain proteins during grain filling. Plant Cell Reports 30: 1 641–59. DOI: https://doi.org/10.1007/s00299-011-1074-2
Lisle A J, Martin M and Fitzgerald M A. 2000. Chalky and translucent rice grains differ in starch composition and structure and cooking properties. Cereal Chemistry 77: 627–32. DOI: https://doi.org/10.1094/CCHEM.2000.77.5.627
Morita S, Yonemaru J I and Takanashi J I. 2005. Grain growth and endosperm cell size under high night temperatures in rice (Oryza sativa L.). Annals of Botany 95: 695–701. DOI: https://doi.org/10.1093/aob/mci071
Nagarajan S, Jagadish S V K, Prasad A H, Thomar A K, Anand A, Pal M and Agarwal P K. 2010. Local climate affects growth, yield and grain quality of aromatic and non-aromatic rice in northwestern India. Agriculture, Ecosystems and Environment 138: 274–81. DOI: https://doi.org/10.1016/j.agee.2010.05.012
Ramanathan V, Ramana M V, Roberts G, Kim D, Corrigan C, Chung C, and Winker D. 2007. Warming trends in Asia amplified by brown cloud solar absorption. Nature 448: 575–8. DOI: https://doi.org/10.1038/nature06019
Shi C H, Zhu J, Zhang R C and Chen G L. 1997. Genetic and heterosis analysis for cooking quality traits of indica rice in different environments. Theoretical and Applied Genetics 9: 294–300. DOI: https://doi.org/10.1007/s001220050562
Shi W, Muthurajan R, Rahman H, Selvam J, Peng S, Zou Y and Jagadish K S V. 2013.Source–sink dynamics and proteomic reprogramming under elevated night temperature and their impact on rice yield and grain quality. New Phytologist 197: 825–37. DOI: https://doi.org/10.1111/nph.12088
Shi W, Yin X, Struik P C, Xie F, Schmidt R C and Jagadish K S. 2016. Grain yield and quality responses of tropical hybrid rice to high night-time temperature. Field Crops Research 190: 18–25. DOI: https://doi.org/10.1016/j.fcr.2015.10.006
Song X, Du Y, Song Xand Zhao Q. 2013. Effect of high night temperature during grain filling on amyloplast development and grain quality in japonica rice. Cereal Chemistry 90: 114–9. DOI: https://doi.org/10.1094/CCHEM-01-12-0010-R
Song X, Du Y, Zhao Q and Cui Y. 2015. Effects of high night temperature during grain filling on formation of physicochemical properties for japonica rice. Journal of Cereal Science 66: 74–80. DOI: https://doi.org/10.1016/j.jcs.2015.10.006
Tanaka K, Kasai Z and Ogawa M. 1995. Physiology of ripening. Science of the Rice Plant, Vol 2. Physiology, pp 7–118. Matsuo T, Kumazawa K, Ishii K I and Hirata H (Eds). Food and Agriculture Policy Research Center, Tokyo.
Tashiro T and Wardlaw I F. 1989. A comparison of the effect of high temperature on grain development in wheat and rice. Annals of Botany 64: 59–65. DOI: https://doi.org/10.1093/oxfordjournals.aob.a087808
Wardlaw I F, Sofield I and Cartwright P M. 1980. Factors limiting the rate of dry matter accumulation in the grain of wheat grown at high temperature. Functional Plant Biology 7: 387–400. DOI: https://doi.org/10.1071/PP9800387
Wilhelm E P, Mullen R E, Keeling P L and Singletary G W. 1999. Heat stress during grain filling in maize: effects on kernel growth and metabolism. Crop Science 39: 1 733–41. DOI: https://doi.org/10.2135/cropsci1999.3961733x
Yamakawa H, Hirose T, Kuroda M and Yamaguchi T. 2007. Comprehensive expression profiling of rice grain filling-related genes under high temperature using DNA microarray. Plant Physiology, 144: 258–77. DOI: https://doi.org/10.1104/pp.107.098665
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