Effect of light, temperature, storage duration and conditions on the germination of two Mediterranean conifers: Tetraclinis articulata and Cedrus atlantica
Abstract
Aim of study: This research aims to determine the optimal germination and storage Conditions for the seeds of two vulnerable Mediterranean conifers, Cedrus atlantica Manetti ex Carrière and Tetraclinis articulata (Vahl) Masters. Area of study: The seeds of C. atlantica and T. articulata were collected in northwestern Algeria. Material and methods: The effect of light [alternation of daylight and darkness (night) vs continuous darkness] and temperature (5, 10, 15, 20, 25, 30, 35, 40 °C) on the germination behavior of the two species was examined. Subsequently, the variation of seeds viability under different storage Conditions (-20 °C, 5 °C, ambient temperature) and throughout various timeframes (6, 12, 18 and 24 months) was assessed. Main results: Daylight presence favored C. atlantica seed germination [final germination percentage (FGP) = 80%] whereas T. articulata germination was light-independent. Overall, temperature significantly affected the majority of the germination parameters of the two species (p < 0.01). The optimal temperature for seed germination of T. articulata and C. atlantica was 15 °C (FGP = 56%) and 20 °C (FGP =80%) respectively. The seeds of the two species were able to retain their viability after 24 months of storage, despite the decline in their germination percentage. The analysis of variance revealed a significant influence of storage Conditions on almost all the germination parameters of both species. Research highlights: The obtained results are crucial for the construction and management of seed banks, as they facilitate the effective conservation of the studied species. This involves the appropriate and well-scheduled renewal of accessions, which is essential to preserve their long-term integrity.
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References
Bareke T, 2018. Biology of seed development and germination physiology. Adv Plants Agric Res 8(4): 336-346. https://doi.org/10.15406/apar.2018.08.00335
Bertsouklis K, Vlachou G, Trigka M, Papafotiou M, 2022. In vitro studies on seed germination of the Mediterranean species Anthyllis barba-jovis to facilitate its introduction into the floriculture industry. Horticulturae 8(10): 889-889. https://doi.org/10.3390/horticulturae8100889.
Bonnet F (1981). Measurement and management of Tree seed moisture. Res Pap SO-177 USDA. https://doi.org/10.2737/SO-RP-177
Bouazza Kh, Dellal A, Mehdadi Z, Zedek M, Kharytonov M, 2018. Site variability and dieback of Atlas cedar in the cedar forest of Theniet El Had (West of Algeria). Agric For 64(3): 89-99. https://doi.org/10.17707/AgricultForest.64.3.08
Cassan A, Saichi N, Durand P, Boos A, 2009. Guide des conifères et espèces apparentées. Klorane Inst, Lavaur, France. 68p.
Corbineau F, 2024. The Effects of storage Conditions on seed deterioration and ageing: How to improve seed longevity. Seeds 3(1): 56-75. https://doi.org/10.3390/seeds3010005
Diaz-Sala C, Cabezas B, Fernández de Simón D, Abarca M, Guevara, 2013. The uniqueness of conifers. In: From plant genomics to plant biotechnology; Poltronieri P, Burbulis N, Fogher C (eds.). pp. 67–96. Woodhead Publ, Cambridge.
Djemel R, 2022. Inventaire floristique et biogéographique de la forêt de Sassel (Wilaya d’Ain T’émouchent). Master thesis. University of Belhadj Bouchaib, Algeria.
FAO, 2012. Algérie: État actuel des ressources génétiques forestières-Rapport National. Food and Agriculture Organization of the United Nations, Rome.
Gairola S, Shabana HA, Mahmoud T, El-Keblawy A, Santo A, 2019. Evaluating germinability of eight desert halophytes under long-term seed storage: Implications for conservation. Plant Divers 41(4): 229-236. https://doi.org/10.1016/j.pld.2019.07.002
Garcia-Fayos P (ed), 2001. Bases ecológicas para la recolección, almacenamiento y germinación de semillas de especies de uso forestal de la Comunidad Valenciana (1st ed). Generalitat Valenciana, Spain. 91p.
Ghazouani FZ, Terras M, Djebbouri M, 2021. Effects of temperature, water stress and saline stress on seeds germination of Tetraclinis articulata (Vahl) Masters in Saïda, Algeria. South Asian J exp biol 11(1): 61-66. https://doi.org/10.38150/sajeb.11(1).p61-66
Hadjadj K, Letreuch-Belarouci A, 2017. Synthèse bibliographique sur le thuya de berbérie Tetraclinis articulata (Vahl) Mast. Rev Int Géol Géogr Écol Trop 41(1): 13-27.
Hafidou N, Mehdadi Z, Latreche A, Dadach M, Bouchaour I, 2021. Seed viability and optimal germination Conditions of Cedrus atlantica (Manetti ex Endl.) Carrière. For Stud 75(1): 188-201. https://doi.org/10.2478/fsmu-2021-0020
Haichour S, Benabdeli Kh, 2022. Algeria’s forest ecosystem in the face of anthropogenic and climatic pressures. Int J Trop Geol Geogr Ecol 46 (1): 109-124.
Hawkins BJ, Guest HJ, Kolotelo D, 2003. Freezing tolerance of conifer seeds and germinants. Tree Physiol 23 (18): 1237-1246. https://doi.org/10.1093/treephys/23.18.1237
ISTA, 2023. Guidelines for the establishment and management of seed testing laboratories, Joint FAO and ISTA Handbook. Food and agriculture organization-FAO, Italy.
IUCN, 2011. Le thuya de Berbérie: découvre la biodiversité du Parc National d’Al Hoceima. International Union for Conservation of Nature, Spain.
IUCN, 2013. The IUCN red list of threatened species. https://www.iucnredlist.org. [24 July 2023].
JORA, 2012. Executive Decree No. 12-15, of 18 January, that established the classification of non-forest lands intended for reforestation. Journal Officiel de la République Algérienne (Algeria) No. 3, 18/01/12.
Juan-Vicedo J, Serrano-Martínez F, Cano-Castillo M, Luis JL, 2022. In Vitro propagation, genetic assessment, and medium-term conservation of the coastal endangered species Tetraclinis articulata (Vahl) Masters (Cupressaceae) from adult trees. Plants 11(2): 187. https://doi.org/10.3390/plants11020187
Kacha S, 2018. Richesse et diversité des populations de lépidoptères dans le parc National de Theniet el Had (Algérie). Doctoral thesis. University Ibn-khaldoun, Algeria.
Keeling CI, Bohlmann J, 2006. Genes, enzymes and chemicals of terpenoid diversity in the constitutive and induced defence of conifers against insects and pathogens. New Phytol 170(4): 657–675. https://doi.org/10.1111/j.1469-8137.2006.01716.x
Keeling CI, Lewis AR, Kolotelo D, Russell JH, Kermode AR, 2018. Resin vesicles in conifer seeds: morphology and allelopathic effects. Can J for res 48(12): 1515-1525. https://doi.org/10.1139/cjfr-2018-0221
Khaddari AE, Abbas Y, Abidine AZ, Aoujdad J, Ouajdi M, 2019. Seed germination and juvenile growth of thuya (TetraclinisarticulataVahl Masters) plants from five origins of Morroco. Plant cell biotechnol mol biol 20(15-16): 667-681.
Kshatriya K, Whitehill JGA, Madilao L, Henderson H, Kermode, A, 2018. Histology of resin vesicles and oleoresin terpene composition of conifer seeds. Can J for res 48(9): 1073-1084. https://doi.org/10.1139/cjfr-2018-0164
Liu Y, Liu K, Zhao Y, 2022. Effect of storage Conditions on the protein composition and structure of peanuts. ACS Omega 7(25): 21694-21700. https://doi.org/10.1021/acsomega.2c01680
Loukkas A, 2001. Étude de la variabilité stationnelle de la qualité du bois de Cedrus atlantica Manetti dans le massif du Djurdjura. Magister thesis. National institute of agronomy El-Harrach, Algeria.
MAGRAMA, 2017. Tetraclinis articulata: biogéographie, écologie, menaces et conservation. Ministerio de Agricultura Alimentación y Medio Ambiente, Gobierno de España.
Mairif M, Bendifallah L, Doumandji S, 2023. Diversity of Odonates (Odonata, Anisoptera & Zygoptera) in the Theniet El Had National Park-North West of Algeria. J Insect Biodivers Syst 9: 155-18. https://doi.org/10.52547/jibs.9.1.155
Nadarajan J, Walters C, Pritchard HW, Ballesteros D, Colville L, 2023. Seed longevity-the evolution of knowledge and a conceptual Framework. Plants 12(3): 471. https://doi.org/10.3390/plants12030471
Navarro-cerrillo RM, Galvez-ramirez C, 2001. Manual para la Identificación y Reproducción de Semillas de Especies Vegetales Autóctonas de Andalucía. Consejería De Medio Ambiente, Gobierno de España.
Navas MV, Sánchez-Romero C, 2021. Resin vesicles in Abies pinsapo: Characterization and effect on germination. Proc XVII Int Conf on Plant Biology, Malaga (Spain), July 7-8.
Olosunde A, Aladele S, Olubiyi M, Afolayan G, Olajire O, 2017. Effects of storage Conditions and Duration on seed germination of okra (Abelmoscusescu-lentus). Int J plant soil sci 20(6): 1-6. https://doi.org/10.9734/IJPSS/2017/38518
Pemán-García J, Navarro-Cerrillo RM, Nicolás-Peragón JL, Prada-Sáez M.A, Serrada Hierro R, 2014. Producción y manejo de semillas y plantas forestales Tomo I. Organismo autónomo parques nacionales OPAN, Gobierno de España.
Rabhi K, Akli A, Djouhri A, Yahi N, Boudedja, S, 2018. Bilan et croissance des reboisements de cèdre de l’Atlas, Cedrus atlantica (Endl.) Carrière, en Algérie: cas du Djurdjura et de l’Atlas blidéen. Bois Forêts Trop 337(2018): 3-15. https://doi.org/10.19182/bft2018.337.a31627
Sarvas R, 1950. Effect of light on the germination of forest tree seeds. Oikos 2(1): 109-119. https://doi.org/10.2307/3564665
Shibata M, Coelho CMM, Steiner N, Block JM, Maraschin M, 2020. Lipid, protein and carbohydrate during seed development in Araucaria angustifólia. Cerne 26(2): 301-309. https://doi.org/10.1590/01047760202026022653
Song K, Choi G, 2019. Phytochrome regulation of seed germination. In: Phytochromes Methods in molecular biology; Hiltbrunner A (eds.).pp: 149-156. Humana, New york.
Suszka B, 1998. The effect of storage Conditions on the germination of Quercus robur L. acorns. For Tree Improv 21: 297-314.
Takos I, Merou T, 2001. Effect of storage Conditions and seed treatment on germination of Cedrus deodara loud. and C. libani A. rich. Silvae Genet 50: 205-208.
Trotter D, Kolotelo D, Steenis EV, Dennis J, Peterson P, Bennett R, 2001. Seeds handling guidebook. BC MoF, Victoria, Canada. 94 pp.
Walters C, Pence VC, 2020. The unique role of seed banking and cryobiotechnologies in plant conservation. Plants people planet 3(1): 83-91. https://doi.org/10.1002/ppp3.10121
Wei Y, Wang S, Yu D, 2023. The role of light quality in regulating early seedling development. Plants 12(14): 2746-2746. https://doi.org/10.3390/plants12142746
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