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Stress tolerance indices for the identification of low phosphorus tolerant introgression lines derived from Oryza rufipogon Griff.

Published online by Cambridge University Press:  29 July 2021

Basavaraj P. S.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India ICAR-National Institute of Abiotic Stress Management, Baramati, 413115, India
Gireesh C.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Muralidhara Bharamappanavara
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Manoj C. A.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Ishwarya Lakshmi V. G.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India Professor Jayashankar Telangana State Agriculture University, Hyderabad, India
Honnappa
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Ajitha V.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Senguttuvel P.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Sundaram R. M.
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
Anantha M. S.*
Affiliation:
ICAR-Indian Institute of Rice Research, Hyderabad, 500030, India
*
*Corresponding author. E-mail: [email protected]

Abstract

Soil phosphorus (P) deficiency is one of the major challenges for the cultivation of rice worldwide because it limits the growth and productivity of the crop. Therefore, the ability to grow in P-deficit soils is an important trait for rice cultivation. O . rufipogon Griff., a wild relative of rice, is a source of genetic variation for low phosphorus tolerance. The present study was undertaken to identify low P stress-tolerant introgression lines by analysing stress tolerance indices of 40 introgression lines of O. rufipogon. The populations were screened under low soil P and normal soil P plots for two growing seasons. Based on yield under stress and normal conditions, we computed different stress indices, including stress tolerance index (STI), tolerance index, yield reduction ratio (YR), stress susceptibility index, yield stability index (YSI), yield index, per cent yield reduction and geometric mean productivity (GMP). The studies of correlation analysis, principal component analysis and clustering revealed that STI, YSI and GMP were ideal indices for the selection of genotypes that performed well under both stress and normal conditions. Based on these indices, introgression lines (IL-24, IL-29 and IL-32) were identified as promising low P tolerant lines, which exhibited better grain yield under both stress (YS) and normal (YP) conditions. These pre-breeding lines serve as valuable genetic resources for low P tolerance in rice breeding programmes across the world.

Type
Research Article
Copyright
Copyright © The Author(s), 2021. Published by Cambridge University Press on behalf of NIAB

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Footnotes

These authors have contributed equally.

References

Aghaei-Sarbarze, RM, Mohammadi, R, Haghparast, R and Rajabi, R (2009) Determination of drought tolerant genotypes in bread wheat. Electronic Journal of Crop Production 2: 123.Google Scholar
Akinrinde, EA and Gaizer, T (2006) Differences in the performance and phosphorus-use efficiency of some tropical rice (Oryza sativa L.) varieties. Pakistan Journal of Nutrition 5: 206211.Google Scholar
Ashraf, A, El-Mohsen, A, Abd El-Shfi, MA, Gheith, EMS and Suleiman, HS (2015) Using different statistical procedures for evaluating drought tolerance indices of bread wheat genotypes. Advance in Agriculture and Biology 3: 1930.Google Scholar
Bahrami, F, Arzani, A and Karimi, V (2014) Evaluation of yield-based drought tolerance indices for screening safflower genotypes. Agronomy Journal 106: 12191224.CrossRefGoogle Scholar
Basavaraj, PS, Gireesh, C, Muralidhara, B, Manoj, CA, Anantha, MS and Damodar Raju, CH (2020) Genetic analysis of backcross derived lines of Oryza rufipogon in the background of Samba Mahsuri for yield enhancing traits in rice. Electronic Journal of Plant Breeding 11: 11201127.Google Scholar
Basavaraj, PS, Muralidhara, B, Manoj, CA, Anantha, MS, Rathod, S, Damodar Raju, CH, Senguttuvel, P, Madhav, MS, Srinivasprasad, M, Prakasham, V, Basavaraj, K, Badri, J, Subbarao, LV, Sundaram, RM and Gireesh, C (2021) Identification and molecular characterization of high-yielding, blast resistant lines derived from Oryza rufipogon Griff. in the background of ‘Samba Mahsuri’ rice. Genetic Resources and Crop Evolution 68: 19051921.CrossRefGoogle Scholar
Bouslama, M and Schapaugh, WT (1984) Stress tolerance in soybean. Part 1: evaluation of three screening techniques for heat and drought tolerance. Crop Science 24: 933937.10.2135/cropsci1984.0011183X002400050026xCrossRefGoogle Scholar
Brar, DS and Khush, GS (2018) Wild relatives of rice: a valuable genetic resource for genomics and breeding research. In: Tapan Kumar, M and Robert, H (eds). The Wild Oryza Genomes. Springer, pp. 125. doi:10.1007/978-3-319-71997-9_1.Google Scholar
Chen, XR, Chen, M, He, HH, Zhu, CL, Peng, XS, He, XP, Fu, JR and Ouyang, LJ (2011) Identification of low-phosphorus-tolerance in Dongxiang wild rice (Oryza rufipogon Griff.). Acta Agriculturae Universitatis Jiangxiensis 33: 04050411.Google Scholar
Clarke, JM, De-Pauw, RM and Townley-Smith, TM (1992) Evaluation of methods for quantification of drought tolerance in wheat. Crop Science 32: 728732.CrossRefGoogle Scholar
Cordell, D, Drangert, JO and White, S (2009) The story of phosphorus: global food security and food for thought. Global Environmental Change 19: 292305.CrossRefGoogle Scholar
Deng, QW, Luo, XD, Chen, YL, Zhou, Y, Zhang, FT, Hu, BL and Xie, JK (2018) Transcriptome analysis of phosphorus stress responsiveness in the seedlings of Dongxiang wild rice (Oryza rufipogon Griff). Biological Research 51: 7.CrossRefGoogle Scholar
Dorostkar, S, Dadkhodaie, A and Heidari, B (2015) Evaluation of grain yield indices in hexaploid wheat genotypes in response to drought stress. Archives of Agronomy and Soil Science 61: 397413.CrossRefGoogle Scholar
Ehlers, JD and Hall, AE (1998) Heat tolerance of contrasting cowpea lines in short and long days. Field Crops Research 55: 1121.CrossRefGoogle Scholar
Fageria, NK and Baligar, VC (1997) Upland rice genotypes evaluation for phosphorus use efficiency. Journal of Plant Nutrition 20: 499509.CrossRefGoogle Scholar
Fageria, NK, Wright, RJ and Baligar, VC (1988) Rice cultivar evaluation for phosphorus use efficiency. Journal of Plant Nutrition 111: 105109.Google Scholar
FAO (2017) The Future of Food and Agriculture Trends and Challenges. Rome: FAO. pp-11. Available at http://www.fao.org/3/i6583e/i6583e.pdf.Google Scholar
Fernandez, GCJ (1992) Effective selection criteria for assessing plant stress tolerance. In: Proceeding of the International Symposium on adaptation of vegetables and other food crops in temperature and water stress, AVRDC Publication. Taiwan: 257–270.Google Scholar
Fischer, RA and Maurer, R (1978) Drought resistance in spring wheat cultivars. I. Grain yield response. Australian Journal of Agricultural Research 29: 897907.CrossRefGoogle Scholar
Gamuyao, RJ, Chin, H, Tanaka, JP, Pesaresi, P, Catausan, S, Dalid, C, Loedin, IS, Mendoza, EMT, Wissuwa, M and Heuer, S (2012) The protein kinase Pstol1 from traditional rice confers tolerance of phosphorus deficiency. Nature 488: 535540.CrossRefGoogle ScholarPubMed
Gavuzzi, P, Rizza, F, Palumbo, M, Campaline, RG, Ricciardi, GL and Borghi, B (1997) Evaluation of field and laboratory predictors of drought and heat tolerance in winter cereals. Canadian Journal of Plant Science 77: 523531.CrossRefGoogle Scholar
Golestani-Araghi, S and Assad, MT (1998) Evaluation of four screening techniques for drought resistance and their relationship to yield reduction ratio in wheat. Euphytica 103: 293299.CrossRefGoogle Scholar
Guttieri, MJ, Stark, JC, Brien, K and Souza, E (2001) Relative sensitivity of spring wheat grain yield and quality parameters to moisture deficit. Crop Science 41: 327335.CrossRefGoogle Scholar
Hammer, Ø, Harper, DAT and Ryan, PD (2001) PAST: paleontological statistics software package for education and data analysis. Palaeontologia Electronica 4: 930.Google Scholar
Hasan, R (1996) Phosphorus status of soils in India. Better Crops International 10: 45.Google Scholar
Kamrani, M, Farzi, A and Ebadi, A (2015) Evaluation of grain yield performance and tolerance to drought stress in wheat genotypes using drought tolerance indices. Cereal Research 5: 231246.Google Scholar
Kamrani, M, Hoseini, Y and Ebadollahi, E (2017) Evaluation for heat stress tolerance in durum wheat genotypes using stress tolerance indices. Archives of Agronomy and Soil Science 64: 3845.CrossRefGoogle Scholar
Kaya, Y, Palta, C and Taner, S (2002) Additive main effects and multiplicative interactions analysis of yield performances of in bread wheat genotypes across environments. Turkish Journal of Agriculture forestry 26: 275279.Google Scholar
Khan, U and Mohammad, F (2016) Application of stress selection indices for assessment of nitrogen tolerance in wheat (Triticum aestivum L.). Journal Animal Plant Science 26: 201210.Google Scholar
Lang, NT and Buu, BC (2006) Mapping QTLs for phosphorus deficiency tolerance in rice (Oryza sativa . L). Omonrice 14: 19.Google Scholar
Li, YY, Luo, A, Wang, W, Yang, C and Yang, X (2005) An approach to the screening index for low phosphorus tolerant rice genotype. Ying Yong Sheng Tai Xue Bao 16: 119124, (Article in Chinese).Google ScholarPubMed
Li, YY, Xu, GY, Li, JF, Guo, JR, Wang, ZQ and Yang, JC (2015) Tolerance to low phosphorus and its agronomic and physiological characteristics of rice cultivars. Chinese Journal of Rice Science 32: 5166, (in Chinese with English abstract).Google Scholar
Mahadeva swamy, HK, Anila, M, Ravindra, RK, Bhadana, VP, Anantha, MS, Brajendra, P, Hajira, SK, Balachiranjeevi, CH, Laxmi Prasanna, B, Pranathi, K, Dilip, T, Bhaskar, S, Abhilash Kumar, V, Kousik, MBVN, Harika, G, Swapnil, K, Rekha, G, Cheralu, C, Gouri Shankar, VS, Reddy, N, Kumar, S, Balachandran, SM, Madhav, MS, Mahendra Kumar, R and Sundaram, RM (2019) Phenotypic and molecular characterization of rice germplasm lines and identification of novel source for low soil phosphorus tolerance in rice. Euphytica 215: 118.CrossRefGoogle Scholar
Mohammadi, R, Armion, M, Kahrizi, D and Amri, A (2010) Efficiency of screening techniques for evaluating durum wheat genotypes under mild drought conditions. International Journal of Plant Production 4: 17358043.Google Scholar
Mollasadeghi, V, Valizadeh, M, Shahryariand, RA and Imani, A (2011) Evaluation of end drought tolerance of 12 wheat genotypes by stress indices. Middle-East Journal of Science Research 7: 241247.Google Scholar
Neelam, K, Thakur, S, Neha, Yadav IS, Kumar, K, Dhaliwal, SS and Singh, K (2017) Novel alleles of phosphorus-starvation tolerance 1 gene (PSTOL1) from Oryza rufipogon confers high phosphorus uptake efficiency. Frontiers in Plant Sciences 8:509. .CrossRefGoogle ScholarPubMed
Perrier, X and Jacquemoud-Collet, JP (2006) Darwin software. Available at http://darwin.cirad.fr/darwin.Google Scholar
Rameeh, V (2015) Nitrogen deficiency stress indices of seed yield in rapeseed (Brassica napus L.) genotypes. Agronomical Research in Moldavia 158: 8996.Google Scholar
Ramirez, P and Kelly, JD (1998) Traits related to drought resistance in common bean. Euphytica 99: 127136.CrossRefGoogle Scholar
Rose, TJ and Wissuwa, M (2012) Rethinking internal phosphorus utilization efficiency: a new approach is needed to improve PUE in grain crops. Advances in Agronomy 116: 186211.Google Scholar
Rosielle, AA and Hamblin, J (1981) Theoretical aspect of selection for yield in stress and non-stress environment. Crop Science 21: 943946.CrossRefGoogle Scholar
Singh, S, Sengar, RS, Kulshreshtha, N, Datta, D, Tomar, RS, Rao, VP, Garg, D and Ojha, A (2015) Assessment of multiple tolerance indices for salinity stress in bread wheat (Triticum aestivum L.). Journal of Agriculture Science 7: 4957.Google Scholar
Tiwari, KN (2001) Phosphorus needs of Indian soils and crops. Better Crops International 15: 23–22.Google Scholar
Vance, CP, Uhde-Stone, C and Allan, DL (2003) Phosphorus acquisition and use critical adaptations by plants for securing a non-renewable resource. New Physiologist 157: 423447.CrossRefGoogle Scholar
Yaseen, M and Malhi, SS (2009) Differential growth performance of 15 wheat genotypes for grain yield and phosphorus uptake on a low phosphorus soil without and with applied phosphorus fertilizer. Journal of Plant Nutrition 32: 10151043.CrossRefGoogle Scholar
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