In collaboration with Scientific Association of Iranian Medicinal Plants

Document Type : Research Paper

Authors

1 M.Sc. graduate, Imam Khomeini International University, Qazvin, Iran

2 Imam Khomeini International University, Qazvin, Iran

Abstract

To investigate the effect of mycorrhiza inoculation on increasing the resistance of medicinal plant dill (Anethum graveolens L.) to salinity stress, a factorial experiment was conducted in a randomized complete block design with three replications at the research greenhouse of Imam Khomeini International University, Qazvin province, Iran. The first factor was ecotype at two levels (Isfahan and Varamin), the second factor was salinity at three levels (0, 5 and 10 dS/m), and the third factor was mycorrhiza at three levels (0, 75 and 150 g fungi). The results showed that mycorrhizal inoculation improved all the quantitative traits studied so that under salinity conditions, the plants inoculated with mycorrhiza showed better growth than non-inoculated plants. The highest dry weight, plant height, number of seeds plant-1, and 1000-seed weight were obtained in ecotype Isfahan, salinity level 5 dS/m and 150 g of mycorrhiza. Eleven compounds were identified in dill essential oil. The highest percentage of limonene (7.5%) was obtained from ecotype Varamin plants treated with 5 dS/m salinity and 150 g mycorrhiza. The highest percentage of carvone (86.3%) was obtained in ecotype Isfahan treated with 150 g mycorrhiza and non-salinity.

Keywords

- Abbaspour, H., Saeidi-Sar, S., Afshari, H. and Abdel-Wahhab, M.A., 2012. Tolerance of mycorrhiza infected pistachio (Pistacia vera L.) seedling to drought stress under glasshouse conditions. Journal of Plant Physiology, 169: 704-709.
- Arora, D.S. and Kaur, G.J., 2007. Antibacterial activity of some Indian medicinal plants. Journal of Natural Medicine, 61(3): 313-317.
- Augé, R.M., Toler, H.D. and Saxton, A.M., 2015. Arbuscular mycorrhizal symbiosis alters stomatal conductance of host plants more under drought than under amply watered conditions: a meta-analysis. Mycorrhiza, 25: 13-24.
- Bencherif, K., Boutekrabt, A., Fontaine, J., Laruelle, F., Dalpè, Y. and Lounès-Hadj, A., 2015. Sahraouibmpact of soil salinity on arbuscular mycorrhizal fungi biodiversity and microflora biomass associated with Tamarix articulataVahll rhizosphere in arid and semi-arid Algerian areas. Science of the Total Environment, 533: 488-494.
- Chun, S.C., Paramasivan, M. and Chandrasekaran, M., 2018. Proline accumulation influenced by osmotic stress in Arbuscular mycorrhizal symbiotic plants. Frontiers in Microbiology, 9: 1-13.
- Dolatabadi, H.K., Goltapeh, E.M., Moieni, A., Jaimand, K., Sardrood, B.P. and Varma, A., 2011. Effect of Piriformospora indica and Sebacina vermifera on plant growth and essential oil yield in Thymus vulgaris invitro and invivo experiments. Journal of Symbiosis, 53: 29-35.
- Faraji Arman, M., 2011. Effect of drought and salinity stress on seed germination in Achillea millefolium. 1st National Conference on New Concepts in Agriculture, Saveh, Iran, 8 November.
- Fasciglione, G., Casanovas, E.M., Quillehauquy, V., Yommi, A.K., Goñi, M.G., Roura, S.I. and Barassi, C.A., 2015. Azospirillum inoculation effects on growth, product quality and storage life of lettuce plants grown under salt stress. Scientia Horticulturae, 195: 154-162.
- Gupta, M.L., Prasad, A., Ram, M. and Kumar, S., 2002. Effect of the vesicular-arbuscular mycorrhizal (VAM) fungus Glumus fasciculatum on the essential oil yield related characters and nutrient acquisition in the crops of different cultivars of menthol mint (Mentha arvensis) under field conditions. Bioresource Technology, 81: 77-79.
- Hanson, B.R., Grattan, S.R. and Fulton, A., 2006. Agricultural Salinity and Drainage. Water Management Publication, 157p.
- Kapoor, R., Giri, B. and Mukerji, G., 2002. Mycorrhization of coriander (Coriandrum sativum L.) to enhance the concentration and quality of essential oil. Journal of the Science of Food and Agriculture, 82: 339-342.
- Kapoor, R., Giri, B. and Mukerji, K.G., 2004. Improved growth and essential oil yield and quality in Foeniculum vulgare Mill. on mycorrhizal inoculation supplemented with P-fertilizer. Bioresource Technology, 93: 307-311.
- Kubeczka, K.H., 2002. Essential oils Analysis by Capillary Gas Chromatography and Carbon-13 NMR Spectroscopy. John wiley & Sins publication, Chichester, 480p.
- Lamian, A., Naghdu Badi, H., Ladan Moghadam, A. and Mehr-Afarin, A., 2016. Morphophysiological changes, essential oil content and methylcavicol percent in Artemisia dracunculus in present of Glomus intraradices inoculation and Salinity Stress. Journal of Medicinal Plants, 4(56): 64-77.
- Larrainzar, E. and Wienkoop, S., 2017. A Proteomic View on the Role of Legume Symbiotic Interactions. Frontiers in Plant Sciences, 8: 210-214.
- Rabie, G.H. and Almadini, A.M., 2005. Role of bioinoculants in development of salt-tolerance of Vicia faba plants under salinity stress. African Journal of Biotecnology, 4(3): 210-222.
- Ruiz-Lozano, J.M. and Azcon, R., 2000. Symbiotic efficiency and infectivity of an autochthonous Arbuscular mycorrhizal Glomus sp. From saline soil and Glomus deserticola under salinity. Mycorrhizal, 10: 137-143.
- Rydlova, J., Jelínkova, M., Dusek, K., Duskova, E., Vosatka, M. and Puschel, D., 2016. Arbuscular mycorrhiza differentially affects synthesis of essential oils in coriander and dill. Mycorrhiza, 26(2): 123-131.
- Saberali, S.F. and Moradi, M., 2019. Effect of salinity on germination and seedling growth of Trigonella foenum-graecum, Dracocephalum moldavica, Satureja hortensis and Anethum graveolens. Journal of the Saudi Society of Agricultural Sciences, 18(3): 316-323.
- Tsamaidia, D., Dafererab, D., Karapanosa, I.C. and Passama, H.C., 2017. The effect of water deficiency and salinity on the growth and quality of fresh dill (Anethum graveolens L.) during autumn and spring cultivation. International Journal of Plant Production, 11(1): 33-46.