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Effect of salinity on seed germination of five mangroves from Sri Lanka: use of hydrotime modelling for mangrove germination

Published online by Cambridge University Press:  19 December 2018

Malaka M. Wijayasinghe*
Affiliation:
Department of Botany, University of Peradeniya, Peradeniya, Sri Lanka Postgraduate Institute of Science, University of Peradeniya, Peradeniya, Sri Lanka
K.M.G. Gehan Jayasuriya
Affiliation:
Department of Botany, University of Peradeniya, Peradeniya, Sri Lanka Postgraduate Institute of Science, University of Peradeniya, Peradeniya, Sri Lanka
C.V.S. Gunatilleke
Affiliation:
Department of Botany, University of Peradeniya, Peradeniya, Sri Lanka Postgraduate Institute of Science, University of Peradeniya, Peradeniya, Sri Lanka
I.A.U.N. Gunatilleke
Affiliation:
Department of Botany, University of Peradeniya, Peradeniya, Sri Lanka Postgraduate Institute of Science, University of Peradeniya, Peradeniya, Sri Lanka
Jeffrey L. Walck
Affiliation:
Department of Biology, Middle Tennessee State University, Murfreesboro, TN 37132, USA
*
Author for correspondence: Malaka M. Wijayasinghe, Email: [email protected]

Abstract

Mangroves are highly adapted to extreme environmental conditions that occur at the interface of salt and fresh water. Adaptations to the saline environment during germination are a key to mangrove survival, and thereby, its distribution. The main objective of this research was to study the effect of salinity on seed germination of selected mangrove species and the application of a hydrotime model to explain the relationship between water potential of the medium and rate of seed germination. Germination of seeds was examined at 15, 25 and 35°C in light/dark over a NaCl gradient. Germination time courses were prepared, and germination data were used to investigate whether these species behave according to the principles of the hydrotime model. The model was fitted for the germination of Acanthus ilicifolius seeds at 25°C. Final germination percentage was significantly influenced by species, osmotic potential and their interaction at 25°C. Moreover, temperature had a clear effect on seed germination (Sonneratia caseolaris and Pemphis acidula) which interacted with osmotic potential. Only A. ilicifolius seeds behaved according to the hydrotime principles and thus its threshold water potential was –1.8 MPa. Optimum germination rates for seeds of the other species occurred at osmotic potentials other than 0 MPa. The descending order of salinity tolerance of the tested species was Aegiceras corniculatum > Sonneratia caseolaris > Acanthus ilicifolius > Pemphis acidula > Allophylus cobbe, suggesting that the viviparous species (A. corniculatum) is highly salt tolerant compared with the non-viviparous species. The results revealed that seeds of the study species exhibited facultative halophytic behaviour in which they can germinate over a broad range of saline environments. Use of a hydrotime model for mangroves was limited as germination of their seeds did not meet model criteria.

Type
Research Paper
Copyright
Copyright © Cambridge University Press 2018 

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Footnotes

Current address: Department of Earth and Environmental Sciences, University of Pavia, Via S. Epifanio 14, Pavia 27100, Italy

References

Allen, PS, Meyer, SE and Khan, MA (2000) Hydrothermal time as a tool in comparative germination studies, pp. 401410 in Black, M, Bradford, KJ and Vazquez-Ramos, J (eds), Seed Biology: Advances and Applications. Cambridge, MA, USA: CABI Publishing Pvt. Ltd.Google Scholar
Baskin, CC and Baskin, JM (2014) Seeds: Ecology, Biogeography, and Evolution of Dormancy and Germination, 2nd edition. San Diego, CA, USA: Academic Press.Google Scholar
Bradford, KJ (1990) A water relations analysis of seed germination rates. Plant Physiology 94, 840849.Google Scholar
Clough, BF (1984) Growth and salt balance of the mangroves Avicennia marina (Forsk.) Vierh. and Rhizophora stylosa Griff. in relation to salinity. Functional Plant Biology 11, 419430.Google Scholar
Dahal, P and Bradford, KJ (1994) Hydrothermal time analysis of tomato seed germination at suboptimal temperature and reduced water potential. Seed Science Research 4, 7180.Google Scholar
Donohue, K, Dorn, L, Griffith, C, Kim, E, Aguilera, A, Polisetty, CR and Schmitt, J (2005) The evolutionary ecology of seed germination of Arabidopsis thaliana: variable natural selection on germination timing. Evolution 59, 758770.Google Scholar
Downton, WJS (1982) Growth and osmotic relations of the mangrove Avicennia marina, as influenced by salinity. Functional Plant Biology 9, 519528.Google Scholar
Duan, DY, Liu, XJ, Khan, MA and Gul, B (2004). Effects of salt and water stress on the germination of Chenopodium glaucum L. seed. Pakistan Journal of Botany 36, 793800.Google Scholar
Duke, NC, Meynecke, JO, Dittmann, S, Ellison, AM, Anger, K, Berger, U, Cannicci, S, Diele, K, Ewel, KC, Field, CD, Koedam, N, Lee, SY, Marchand, C, Nordhaus, I and Dahdouh-Guebas, F (2007) A world without mangroves? Science 317, 4142.Google Scholar
El-Keblawy, A and Al-Rawai, A (2005) Effects of salinity, temperature and light on germination of invasive (Prosopis juliflora) (Sw.) DC. Journal of Arid Environments 61, 555565.Google Scholar
Gianinetti, A and Cohn, MA (2007) Seed dormancy in red rice. XII: Population-based analysis of dry-afterripening with a hydrotime model. Seed Science Research 17, 253271.Google Scholar
Gummerson, RJ (1986) The effect of constant temperature and osmotic potential on the germination of sugar beet. Journal of Experimental Botany 37, 729–714.Google Scholar
Hogarth, P and Hogarth, P (2007) The Biology of Mangroves and Seagrasses. Oxford, UK: Oxford University Press.Google Scholar
Huang, Z, Zhang, X, Zheng, G and Gutterman, Y (2003) Influence of light, temperature, salinity and storage on seed germination of (Haloxylon ammodendron). Journal of Arid Environments 55, 453464.Google Scholar
IUCN (2013) IUCN Red List of Threatened Species. Version 2013.2. Available at: www.iucnredlist.org (accessed 18 December 2013).Google Scholar
Jayatissa, LP and Koedam, N (2002) A review of the floral composition and distribution of mangroves in Sri Lanka. Botanical Journal of the Linnean Society 138, 2943.Google Scholar
Joshi, GV, Pimplaskar, M and Bhosale, LJ (1972). Physiological studies in germination of mangroves. Botanica Marina 15, 9195.Google Scholar
Katembe, WJ, Ungar, IA and Mitchell, JP (1998) Effect of salinity on germination and seedling growth of two Atriplex species (Chenopodiaceae). Annals of Botany 82, 167175.Google Scholar
Khan, AM, Gul, B and Weber, DJ (2000) Germination responses of Salicornia rubra to temperature and salinity. Journal Arid Environments 45, 207214.Google Scholar
Khan, MA and Gul, B (2006) Halophyte seed germination, pp. 1130 in Khan, MA and Darrell, J (eds), Ecophysiology of High Salinity Tolerant Plants. Dordrecht, Netherlands: Springer Publishers.Google Scholar
Khan, MA and Ungar, IA (1985) Biology of Salt Tolerant Plants. Karachi, Pakistan: Department of Botany, University of Karachi.Google Scholar
Khan, MA and Ungar, IA (1996) Influence of salinity and temperature on the germination of Haloxylon recurvum Bunge ex. Boiss. Annals of Botany 78, 547551.Google Scholar
Khan, MA, Zaheer, M, Ahmed, A and Hameed, A (2006) Effect of sea salt and L-ascorbic acid on the seed germination of halophytes. Journal of Arid Environments 67, 535540.Google Scholar
Lugo, AE and Snedaker, SC (1974) The ecology of mangroves. Annual Review of Ecology and Systematics 5, 3964.Google Scholar
Macnae, W and Fosberg, FR (1981) Sonneratiaceae, pp. 450454 in Dassanayake, MD and Fosberg, FR (eds), A Revised Handbook to the Flora of Ceylon, Volume III. Rotterdam, Netherlands: A.A. Balkema Publishers.Google Scholar
Parida, AK and Jha, B (2010) Salt tolerance mechanisms in mangroves: a review. Trees 24, 199217.Google Scholar
Parinda, AK and Das, AB (2005) Salt tolerance and salinity effects on plants: a review. Ecotoxicology and Environmental Safety 60, 324349.Google Scholar
Patel, NT and Pandey, AN (2009) Salinity tolerance of Aegiceras corniculatum (L.) Blanco from Gujarat coasts of India. Anales de Biología 31, 93104.Google Scholar
Polidoro, BA, Carpenter, KE, Collins, L, Duke, NC, Ellison, AM, Ellison, JC, Farnsworth, EJ, Fernando, ES, Kathiresan, K, Koedam, NE, Livingstone, SR, Miyagi, T, Moore, GE, Nam, VN, Ong, JE, Primavera, JH, Salmo, SG, Sanciangco, JC, Sukardjo, S, Wang, Y and Yong, JWH (2010) The loss of species: mangrove extinction risk and geographic areas of global concern. PLoS One 5, e10095.Google Scholar
Salehifar, M, Torang, A, Farzanfar, M and Salehifar, M (2010) Comparison of salinity stress effect on germination and seedling growth in 8 lines genotypes of common bean (Phaseolus vulgaris). 11th Iranian Crop Science Congress.Google Scholar
Scholander, PF, Hammel, HT, Hemmingsen, E and Garey, W (1962) Salt balance in mangroves. Plant Physiology 37, 722729.Google Scholar
Smith, SM and Snedaker, SC (1995) Salinity responses in two populations of viviparous Rhizophora mangle L. seedlings. Biotropica 27, 435440.Google Scholar
Sosa, L, Llanes, A, Reinoso, H, Reginato, M and Luna, V (2005) Osmotic and specific ion effects on the germination of Prosopis strombulifera. Annals of Botany 96, 261267.Google Scholar
Tomlinson, PB (1994) The Botany of Mangroves. Cambridge, UK: Cambridge University Press.Google Scholar
Toselli, ME and Casenave, EC (2005) Hydropriming and cottonseed germination under unfavourable conditions: modifications in hydrotime model parameters. Seed Science and Technology 33, 8796.Google Scholar
Ungar, IA (1978) Halophyte seed germination. The Botanical Review 44, 233264.Google Scholar
Van Lavieren, H, Spalding, M, Alongi, DM, Kainuma, M, Clusener-Godt, M and Adeel, Z (2012) Securing the future of mangroves: a policy brief. Hamilton, Canada: UNU-INWEH, UNESCO_MAB.Google Scholar
Wadhawa, BM and Meijer, W (1998) Sapindaceae, pp. 450454 in Dassanayake, MD and Fosberg, FR (eds), A Revised Handbook to the Flora of Ceylon, volume XII. Boca Raton, FL, USA: CRC Press.Google Scholar
Walter, H (1979) Vegetation of the Earth and Ecological Systems of the Geo-biosphere, 2nd edition. Springer-Verlag, Berlin. Translated from the third, revised German edition by Joy Wieser.Google Scholar
Wang, W, Yan, Z, You, S, Zhang, Y, Chen, L and Lin, G (2011) Mangroves: obligate or facultative halophytes? A review. Trees 25, 953963.Google Scholar
Windauer, L, Altuna, A and Benech-Arnold, R (2007) Hydrotime analysis of Lesquerella fendleri seed germination responses to priming treatments. Industrial Crops and Products 25, 7074.Google Scholar
Ye, Y, Tam, NFY, Lu, CY and Wong, YS (2005) Effects of salinity on germination, seedling growth and physiology of three salt-secreting mangrove species. Aquatic Botany 83, 193205.Google Scholar
Zhang, H, Irving, LJ, Tian, Y and Zhou, D (2012) Influence of salinity and temperature on seed germination rate and the hydrotime model parameters for the halophyte, Chloris virgata, and the glycophyte, Digitaria sanguinalis. South African Journal of Botany 78, 203210.Google Scholar