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Plant function and evolutionary biology
RESEARCH ARTICLE

Distinction and characterisation of salinity tolerant and sensitive rice cultivars as probed by the chlorophyll fluorescence characteristics and growth parameters

Devendra Pratap Singh A B and Ramani Kumar Sarkar A
+ Author Affiliations
- Author Affiliations

A Central Rice Research Institute, Cuttack-753 006, India.

B Corresponding author. Email: dpsingh_crri@yahoo.com

Functional Plant Biology 41(7) 727-736 https://doi.org/10.1071/FP13229
Submitted: 1 August 2013  Accepted: 20 January 2014   Published: 14 February 2014

Abstract

Soil salinity is a major abiotic stress that limits rice productivity worldwide. The problem is intense – particularly in areas with extremely dry and hot climatic conditions. Designing an effective phenotyping strategy requires thorough understanding of plant survival under stress. The investigation was conducted using 12 rice cultivars differing in salinity tolerance. Among these cultivars, seedling survival on day 10 of salt treatment (12 dS m–1) was above 85% during wet season and 75% during dry season in FL478, AC39416, Pokkali and Kamini. Highly salt-tolerant cultivars maintained greater proportion of green leaf and chlorophyll content under salt stress. Unlike sensitive cultivars, tolerant cultivars taken up less Na+ and more K+, resulting in lower Na+ : K+ ratio in leaf and sheath. Normalised chlorophyll a fluorescence data revealed that the Fv/Fm and PIABS values decreased on days 3 and 7, respectively, of salt stress in susceptible rice cultivar. Salinity factor index (SFI) calculated by giving different weights to relative PIABS values after variable days of salinity stress clearly distinguished the level of tolerance among rice cultivars. The SFI can be used for grouping of moderately to highly salt-tolerant cultivars based on their tolerance level. We conclude that maintenance of greater proportion of green leaf, and restricted transport of Na+ to sheath and leaf helps the plant to counteract adverse effects of salinity on rice growth.

Additional keywords: chlorophyll fluorescence, green-leaf proportion, Na+ : K+ ratio, rice cultivars, salinity factor index.


References

Amirjani MR (2011) Effects of salinity stress on growth, sugar content, pigments and enzyme activity of rice. International Journal of Botany 7, 73–81.
Effects of salinity stress on growth, sugar content, pigments and enzyme activity of rice.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXht12jurbJ&md5=4cd82b214929303588e68bb38ec68fd1CAS |

Falqueto AR, dos Santos PN, Fontes RV, Silva DM (2012) Analysis of chlorophyll a fluorescence of two mangrove species of Vitória Bay (ES, Brazil) to natural variation of tide. Revista Biociências 18, 14–23.

Glaszmann JC, Kilian B, Upadhyaya HD, Varshney RK (2010) Accessing genetic diversity for crop improvement. Current Opinion in Plant Biology 13, 167–173.
Accessing genetic diversity for crop improvement.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXlsFahs74%3D&md5=cdd5ca2b92b810c9ed3b5a154f2cef86CAS | 20167531PubMed |

Huther CM, Ramm A, Rombaldi CV, Bacarin MA (2013) Physiological response to heat stress of tomato ‘Micro-tom’ plants expressing high and low levels of mitochondrial sHSP23.6 protein. Plant Growth Regulation 70, 175–185.
Physiological response to heat stress of tomato ‘Micro-tom’ plants expressing high and low levels of mitochondrial sHSP23.6 protein.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3sXmvVehtro%3D&md5=fee8ed797e5d0504eaddd7ca151af748CAS |

Lafitte HR, Ismail A, Bennett J (2004) Abiotic stress tolerance in rice for Asia: progress and the future. ‘New directions for a diverse planet. Proceedings of the 4th international crop science congress’. Available at www.cropscience.org.au [Accessed 10 November 2013]

Lazár D (2006) The polyphasic chlorophyll a fluorescence rise measured under high intensity of exciting light. Functional Plant Biology 33, 9–30.
The polyphasic chlorophyll a fluorescence rise measured under high intensity of exciting light.Crossref | GoogleScholarGoogle Scholar |

Mitsuya S, Kawasaki M, Taniguchi M, Miyake H (2003) Relationship between salinity-induced damages and aging in rice leaf tissues. Plant Production Science 6, 213–218.
Relationship between salinity-induced damages and aging in rice leaf tissues.Crossref | GoogleScholarGoogle Scholar |

Moradi F, Ismail AM (2007) Responses of photosynthesis, chlorophyll fluorescence and ROS scavenging system to salt stress during seedling and reproductive stages in rice. Annals of Botany 99, 1161–1173.
Responses of photosynthesis, chlorophyll fluorescence and ROS scavenging system to salt stress during seedling and reproductive stages in rice.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXot1agtrs%3D&md5=f4180cc78c22e727357dccbee43eb82eCAS | 17428832PubMed |

Munns R (1993) Physiological processes limiting plant growth in saline soil: some dogmas and hypotheses. Plant, Cell & Environment 16, 15–24.
Physiological processes limiting plant growth in saline soil: some dogmas and hypotheses.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK3sXks1yjsr0%3D&md5=0283903adcc0ce58123341073d06eca4CAS |

Munns R, Tester M (2008) Mechanisms of salinity tolerance. Annual Review of Plant Biology 59, 651–681.
Mechanisms of salinity tolerance.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1cXntFaqtrw%3D&md5=7779a409bb17e45fbc90b71689d168ecCAS | 18444910PubMed |

Nakhoda B, Leung H, Mendioro MS, Mohammadi-nejad G, Ismail AM (2012) Isolation, characterization, and field evaluation of rice (Oryza sativa L., Var. IR64) mutants with altered responses to salt stress. Field Crops Research 127, 191–202.
Isolation, characterization, and field evaluation of rice (Oryza sativa L., Var. IR64) mutants with altered responses to salt stress.Crossref | GoogleScholarGoogle Scholar |

Oukarroum A, Madidi SE, Schansker G, Strasser RJ (2007) Probing the responses of barley cultivars (Hordeum vulgare L.) by chlorophyll a fluorescence OLKJIP under drought stress and re-watering. Environmental and Experimental Botany 60, 438–446.
Probing the responses of barley cultivars (Hordeum vulgare L.) by chlorophyll a fluorescence OLKJIP under drought stress and re-watering.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXntFyhtb0%3D&md5=df3964d7ee57349e8ab04eaa62f3e3d4CAS |

Panda D, Rao DN, Sharma SG, Strasser RJ, Sarkar RK (2006) Submergence effect on rice genotypes during seedling stage: probing of submergence driven changes of photosystem 2 by chlorophyll a fluorescence induction O-J-I-P transients. Photosynthetica 44, 69–75.
Submergence effect on rice genotypes during seedling stage: probing of submergence driven changes of photosystem 2 by chlorophyll a fluorescence induction O-J-I-P transients.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28XjsFKguw%3D%3D&md5=530fb5dd0606a51d9abb2bf54058cf3bCAS |

Sarkar RK, Bhattacharjee B (2011) Rice genotypes with Sub1 QTL differ in submergence tolerance, elongation ability during submergence, and re-generation growth at re-emergence. Rice
Rice genotypes with Sub1 QTL differ in submergence tolerance, elongation ability during submergence, and re-generation growth at re-emergence.Crossref | GoogleScholarGoogle Scholar |

Sarkar RK, Panda D (2009) Distinction and characterisation of submergence tolerant and sensitive rice cultivars, probed by the fluorescence OJIP rise kinetics. Functional Plant Biology 36, 222–233.
Distinction and characterisation of submergence tolerant and sensitive rice cultivars, probed by the fluorescence OJIP rise kinetics.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXisFSqur0%3D&md5=333b9b939a73aacc244585032b8b7346CAS |

Sarkar RK, Panda D, Reddy JN, Patnaik SSC, Mackill DJ, Ismail AM (2009) Performance of submergence tolerant rice (Oryza sativa) genotypes carrying the Sub1 quantitative trait locus under stressed and non-stressed natural field conditions. Indian Journal of Agricultural Sciences 79, 876–883.

Sarkar RK, Mahata KR, Singh DP (2013) Differential responses of antioxidant system and photosynthetic characteristics in four rice cultivars differing in sensitivity to sodium chloride stress. Acta Physiologiae Plantarum 35, 2915–2926.
Differential responses of antioxidant system and photosynthetic characteristics in four rice cultivars differing in sensitivity to sodium chloride stress.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC2cXptlWrug%3D%3D&md5=25c681e02606cc7a49fe16c95b737ad8CAS |

Singh DP, Mahata KR, Saha S, Ismail AM (2010) Crop diversification for improving water productivity and rural livelihoods in coastal saline soils of the Mahanadi delta, India. In ‘Tropical deltas and coastal zones: food production, communities and environment at the land-water interface. Vol. 9’. (Eds CT Hoanh, BW Szuster, K Suan-peng, AM Ismail, AD Noble) pp. 249–263. (CABI: Oxfordshire, UK)

Strasser RJ, Tsimilli-Michael M (2001) Stress in plants, from daily rhythm to global changes, detected and quantified by the JIP test. Chimie Nouvelle 75, 3321–3326. [SRC]

Strasser RJ, Srivastava A, Tsimilli-Michael M (2000) The fluorescence transient as a tool to characterize and screen photosynthetic samples. In ‘Probing photosynthesis: mechanism, regulation and adaptation’. (Eds M Yunus, U Pathre, P Mohantys) pp. 443–480. (Taylor and Francis: London, UK)

Strauss AJ, Krüger GHJ, Strasser RJ, Van Heerden PDR (2006) Ranking of dark chilling tolerance in soybean genotypes probed by the chlorophyll a fluorescence transient O–J–I–P. Environmental and Experimental Botany 56, 147–157.
Ranking of dark chilling tolerance in soybean genotypes probed by the chlorophyll a fluorescence transient O–J–I–P.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28XivVaks7o%3D&md5=d2b788c485181687bec5a349a1da7939CAS |

Thomson MJ, de Ocampo M, Egdane J, Rahman MA, Sajise AG, Adorada DL, Tumimbang-Raiz E, Blumwald E, Seraj ZI, Singh RK, Gregorio GB, Ismail AM (2010) Characterizing the saltol quantitative trait locus for salinity tolerance in rice. Rice 3, 148–160.
Characterizing the saltol quantitative trait locus for salinity tolerance in rice.Crossref | GoogleScholarGoogle Scholar |

Ul Haq T, Gorham J, Akhtar J, Akhtar N, Steele KA (2010) Dynamic quantitative trait loci for salt stress components on chromosome 1 of rice. Functional Plant Biology 37, 634–645.
Dynamic quantitative trait loci for salt stress components on chromosome 1 of rice.Crossref | GoogleScholarGoogle Scholar |

Ul Haq T, Akhtar J, Steele KA, Munns R, Gorham J (2014) Reliability of ion accumulation and growth components for selecting salt tolerant lines in large populations of rice. Functional Plant Biology 41, 279–390.
Reliability of ion accumulation and growth components for selecting salt tolerant lines in large populations of rice.Crossref | GoogleScholarGoogle Scholar |

Wankhade SD, Cornejo MJ, Mateu-Andrés I, Sanz A (2013) Morpho-physiological variations in response to NaCl stress during vegetative and reproductive development of rice. Acta Physiologiae Plantarum 35, 323–333.
Morpho-physiological variations in response to NaCl stress during vegetative and reproductive development of rice.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3sXpvFentbo%3D&md5=abc9b98d5abfe95bf8116c2384eea447CAS |

Xing D, Wu Y (2012) Photosynthetic response of three climber plant species to osmotic stress induced by polyethylene glycol (PEG) 6000. Acta Physiologiae Plantarum 34, 1659–1668.
Photosynthetic response of three climber plant species to osmotic stress induced by polyethylene glycol (PEG) 6000.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3sXpvFeqs74%3D&md5=20f06222e7400d06bb00d9c6148b6242CAS |

Yoshida S, Forno D, Cock J, Gomez KA (1976) ‘Laboratory manual for physiological studies of rice.’ (International Rice Research Institute: Los Banós, Philippines)

Zeng L, Lesch SM, Catherine M, Grieve CM (2003) Rice growth and yield respond to changes in water depth and salinity stress. Agricultural Water Management 59, 67–75.
Rice growth and yield respond to changes in water depth and salinity stress.Crossref | GoogleScholarGoogle Scholar |