دو فصلنامه علوم سبزی ها

دو فصلنامه علوم سبزی ها

اثر هم‌زیستی با قارچ میکوریزا بر برخی ویژگی‌های بیوشیمیایی و رشد گیاه ترخون تحت شرایط تنش خشکی

نوع مقاله : مقاله پژوهشی

نویسندگان
1 دانشجوی سابق کارشناسی ارشد، گروه علوم باغبانی، دانشکده کشاورزی، دانشگاه بوعلی سینا، همدان، ایران
2 استاد، گروه علوم باغبانی، دانشکده کشاورزی، دانشگاه بوعلی سینا، همدان، ایران
3 دانشیار، گروه علوم و مهندسی باغبانی، دانشکده علوم و مهندسی کشاورزی، پردیس کشاورزی و منابع طبیعی، دانشگاه رازی، کرمانشاه، ایران
چکیده
تنش خشکی مهم‌ترین تنش غیرزیستی است که رشد و عملکرد گیاه را تحت تأثیر قرار می‌دهد. به‌منظور بررسی تأثیر هم‌زیستی قارچ‌های میکوریزا و تنش خشکی بر خصوصیات رشد و بیوشیمیایی گیاه ترخون، آزمایشی گلدانی به‌صورت فاکتوریل در قالب طرح کاملاً تصادفی در گلخانه تحقیقاتی دانشگاه رازی انجام شد. فاکتور اول تنش خشکی در دو سطح شامل شاهد (آبیاری کامل) و آبیاری در حد 50 درصد ظرفیت زراعی و فاکتور دوم شامل مایه‌زنی ریزوم‌های ترخون با قارچ‌های میکوریزا از جنس Glomus در 5 سطح ( G.hoi + G. mosseae، G.hoi + G. intraradices ، G. mosseae + G. intraradices ، G.hoi + G. mosseae + G. intraradices ) و شاهد بود. برخی از ویژگی‌های رشد (وزن خشک برگ و طول ریشه)، فیزیولوژیکی (محتوی نسبی آب برگ‌، رنگیزه‌های فتوسنتزی، نشت الکترولیت، پرولین، قند‌های محلول کل، پروتئین محلول و ظرفیت آنتی‌اکسیدانی برگ) اندازه‌گیری شدند. برای مایه‌زنی، 100 گرم از مایه تلقیح که شامل خاک حاوی اسپور، ریشه‌های مایکوریزا و هیف بود در زیر هر قطعه ریزوم استفاده شد. یک ماه پس از استقرار گیاه، تنش خشکی به روش وزنی اعمال شد. طبق نتایج به‌دست آمده، تنش خشکی سبب کاهش وزن خشک برگ و طول ریشه شد. بدین صورت‌که کم‌ترین میزان وزن خشک برگ ( 0/65گرم) و طول ریشه (14/65 سانتی‌متر)، در تیمار 50 درصد ظرفیت زراعی مشاهده شد. برخلاف تنش خشکی، کاربرد هر سه گونه قارچ میکوریزا سبب افزایش وزن خشک برگ (0/83 گرم) و طول ریشه (17/57 سانتی‌متر) شد. در شرایط تنش خشکی، کاربرد میکوریزا سبب بهبود میزان رنگیزه‌های فتوسنتزی نسبت به شاهد شد. بیش‌ترین میزان پرولین (18/33 میکرومول در گرم وزن تر) در تیمار تنش خشکی همراه با سه گونه قارچ میکوریزا حاصل شد، درحالی‌که بیش‌ترین میزان قند محلول کل (00/49 میلی‌گرم در گرم وزن تر)، پروتئین محلول (0/352 میلی‌گرم در گرم وزن تر) و فعالیت آنتی‌اکسیدانی (96/06 %)، در تیمار آبیاری کامل همراه با سه گونه قارچ میکوریزا مشاهده گردید. نتایج نشان داد که کاربرد 3 گونه از قارچ میکوریزا شاملG. intraradices +G. hoi + G. mosseae ، بر ویژگی‌های رشد، فیزیولوژیکی و بیوشیمیایی ترخون تأثیر بهتری داشت.
کلیدواژه‌ها

عنوان مقاله English

The effect of symbiosis with mycorrhizal fungi on some biochemical and growth characteristics of tarragon plant under drought stress conditions

نویسندگان English

Leila Mansori 1
Mahmood Esna-Ashari 2
Masoomeh Amerian 3
1 Former Master's student, Department of Horticultural Sciences, Faculty of Agriculture, Bu-Ali Sina University, Hamedan, Iran
2 Professor, Department of Horticultural Sciences, Faculty of Agriculture, Bu-Ali Sina University, Hamedan, Iran
3 Associate Professor, Department of Horticultural Sciences and Engineering, Faculty of Agricultural Sciences and Engineering, Campus of Agriculture and Natural Resources, Razi University, Kermanshah, Iran
چکیده English

Extended Abstract
1.      Introduction: Water deficit is one of the major abiotic stresses that adversely affects crop growth and yield. Drought stress occurs when the available soil-water becomes scanty and atmospheric conditions cause continuous loss of water by transpiration or evaporation. Arbuscular mycorrhizal fungi, the most important root endophytes, are extensively studied and well documented for their role in promoting resistance to drought stress, nutrient uptake, and improvement in plant development. Furthermore, drought stress adversely affects the physiology, biochemistry, growth, and development of plants worldwide. It leads to the accumulation of reactive oxygen species (ROS) in plants, destroys cell membranes, and disrupts the dynamic balance of active oxygen content. These physiological and biochemical responses of plants under drought stress cause growth inhibition and even death. Many studies have shown that the inoculation of mycorrhizal fungi initiates morphological, nutritional, and physiological changes in host plants to counter biotic and abiotic stresses and enhance plant growth. Approximately 72% of the known vascular plants can act as hosts for arbuscular mycorrhizal fungi, and such mutually beneficial mycorrhizal associations have key roles in maintaining plant productivity in natural and agricultural habitats.
 
2.      Materials and Methods: To investigate the symbiosis of mycorrhizal fungi and drought stress on the growth and biochemical characteristics of tarragon plant, a factorial pot experiment (with two factors) was conducted in the form of a completely randomized design in the research greenhouse of Razi University in 2021. The first factor was drought stress in two levels, including control (full irrigation) and irrigation up to 50% of the pot capacity, and the second factor included inoculation of tarragon rhizomes with mycorrhizal fungi from the genus Glomus in 5 levels (G.hoi + G. mosseae, G.hoi + G. intraradices, G. mosseae + G. intraradices, G.hoi + G. mosseae + G. intraradices, and the control (no inoculation). During the cultivation of rhizomes, fungi inoculation was done, and the amount of mycorrhizal fungi used for each pot was 100 g. After the rhizomes were cultivated and the plants were fully established, drought stress was applied. In order to prevent sudden stress and osmotic stress in plants, drought stress was applied gradually over a period of two months. Drought stress was applied by weight, and two months after the application of drought stress, some growth characteristics (leaf dry weight and root length) and physiological characteristics (relative water content, photosynthetic pigments, electrolyte leakage, proline, total soluble sugars, soluble protein, and antioxidant capacity) were measured.
3.      Results and Discussion: The results showed that in tarragon plants, drought stress caused a decrease in leaf dry weight, root length, photosynthetic pigments, relative water content, and soluble protein. While the amount of proline, total soluble sugars, and antioxidant capacity has increased. The use of mycorrhizal fungi improved the studied characteristics under drought stress conditions. In the conditions of drought stress, the application of mycorrhizal fungi led to a decrease in electrolyte leakage. In response to drought stress, osmotic regulation processes were activated in tarragon plants. Inoculation with mycorrhizal fungi significantly increased vegetative growth indicators, relative content of plant water, proline, and total soluble sugars of tarragon plants under drought stress conditions in comparison with non-inoculated plants. In general, the use of mycorrhizal fungi increased the resistance to drought stress in tarragon plants. The lowest amount of leaf dry weight (0.65 g) and root length (14.65 cm) was observed in the treatment of 50% FC. Contrary to drought stress, the use of all three types of mycorrhizal fungi increased the dry weight of the leaf (0.83 g) and root length (17.57 cm). In the conditions of drought stress, the application of mycorrhiza improved the amount of photosynthetic pigments compared to the control. The highest amount of proline (18.33 μmol g-1 FW) was in the treatment of drought stress with three species of mycorrhizal fungi. The highest amount of total soluble sugar (49.00 mg g-1 FW), soluble protein (0.352 mg g-1 FW), and antioxidant activity (96.06%) was observed in the full irrigation treatment with three species of mycorrhizal fungi.
4.      Conclusion: Under drought conditions, mycorrhizal fungi can enhance seedling survival, promote absorption and transportation of water by the host plant, change the root morphology, improve the gas exchange ability and water use efficiency, regulate the plant endogenous hormone levels, and accelerate reactive oxygen species removal, all of which are aimed at reducing the negative impact of drought on plants. The results showed that the application of G. intraradices +G. hoi + G. mosseae had a better effect on the growth, physiological, and biochemical characteristics of tarragon under drought stress. The above results showed the positive effect of mycorrhiza in increasing the drought tolerance of the tarragon plant and better inhibition of free radicals produced in the presence of this stress. Accumulation of organic molecules in the vacuoles of leaf cells under drought stress is more common in mycorrhizal plants and causes a decrease in the osmotic potential of leaf cells. All these changes change the ratio of water in mycorrhizal plants. In this study, the use of all three species of mycorrhizal fungi improved stress tolerance in tarragon plants more than the control.

کلیدواژه‌ها English

Antioxidant capacity
Proline
Relative water content
Total soluble sugars
Abdelhafez, A. A. & Abdel-Monsief, R. A. (2006). Effects of VA mycorrhizal inoculation on growth, yield and nutrient content of cantaloupe and cucumber under different water regimes. Journal of Agriculture and Biological Sciences, 2(6), 503-508. Https://www.researchgate.net/publication/278026852
Aghaei Joubani, K., Barzoli, M., Jafarian, V. & Shekari, F. (2018). Some physiological and biochemical responses of Artemisia dracunculus to water deficit stress. Plant Process and Function, 6(19), 15-24. (In Persian). Https://doi.org/20.1001.1.23222727.1396.6.19.13.1
Ahmadi, H., Babalar, M., Ali Askary Sarcheshmeh, M., Morshedloo, M. R. & Shokrpour, M. (2020). Effects of exogenous application of citrulline on prolonged water stress damages in hyssop (Hyssopus officinalis L.): Antioxidant activity, biochemical indices, and essential oils profile. Food Chemistry, 333, 127433. Https://doi.org/10.1016/j.foodchem.2020.127433
Alam, M. Z., Choudhury, T. R. & Mridha, M. A. U. (2023). Arbuscular Mycorrhizal Fungi Enhance Biomass Growth, Mineral Content, and Antioxidant Activity in Tomato Plants under Drought Stress. Journal of Food Quality, 20(23), 1-14. Https://doi.org/10.1155/2023/2581608
Ali, J., Jan, I., Ullah, H., Fahad, S., Saud, S., Adnan, M., Ali, B., Liu, k., Harrison, M. T., Hassan, S., Kumar, S., Amjad Khan, M., Kamran, M., Alwahibi, M.S. & S Elshikh, M. (2023). Biochemical response of okra (Abelmoschus esculentus L.) to Selenium (Se) under drought stress. Sustainability, 15(7), 1-15. Https://doi.org/10.3390/su15075694
Ardalani, Sh., Saeidi, M., Jalali Honarmand, S., Ghobadi, M. E. & Abdoli, M. (2015). Effect of post-anthesis drought stress on some agronomic and physiological traits related to source strength in four bread wheat genotypes. Cereal Research, 5(1), 45-65. (In Persian). Https://doi.org/20.1001.1.22520163.1394.5.1.4.5
Arnon, A. N. (1976). Method of extraction of chlorophyll in the plants. Agronomy Journal, 23, 112-121.
Asrar, A. & Elhindi, K. M (2011). Alleviation of drought stress of marigold (Tagetes erecta) plants by using arbuscular mycorrhizal fungi. Saudi Journal of Biological Science, 18(1), 93-98. Https://doi.org/10.1016/j.sjbs.2010.06.007
Badvi, H., Alemzadeh Ansari, M., Mahmoodi Sorestani, M. & Eskandari, F. (2015). Effect of drought stress and mycorrhizal fungi on some morphophtsiolgical characteristics of lettuce (Lactuca sativa L.). The plant production (Scientific Journal of Agriculture), 38(3), 27-39. (In Persian). Https://doi.org/10.22055/ppd.2015.11444
Begum, N., Ahanger, M. A., Zhang, L., (2020). Inoculation and phosphorus supplementation alleviates drought induced growth and photosynthetic decline in Nicotiana tabacum by up-regulating antioxidant metabolism and osmolyte accumulation. Environmental and Experimental Botany, 176(9), 104088. Https://doi.org/10.1016/j.envexpbot.2020.104088
Behrooz, A., Vahdati, K., Rejali, F., Lotfi, M., Sarikhani, S. & Leslie, C. A. (2019). Arbuscular mycorrhiza and plant growth-promoting bacteria alleviate drought stress in walnut. Hortscience, 54(6), 1087–1092. Https://doi.org/10.21273/HORTSCI13961-19
Ben Hamed, K., Castagna, A., Salem, E. A., Ranieri, A. & Abdelly, C. (2007). Sea fennel (Crithmum maritimum L.) under salinity conditions: a comparison of leaf and root antioxidant responses. Plant Growth Regul, 53(3), 185-194. Https://doi.org/10.1007/s10725-007-9217-8
Bradford, M. M. (1976). Rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry, 72(1-2), 248-254. Https://doi.org/10.1016/0003-2697(76)90527-3
Brodersen, C. R., Roddy, A. B., Wason, J. W. & McElrone, A. J. (2019). Functional status of xylem through time. Annual Review of Plant Biology, 70(1), 407–433. Https://doi.org/10.1146/annurev-arplant-050718-100455
Chen, W., Meng, P., Feng, H. & Wang, C. (2020). Effects of Arbuscular Mycorrhizal Fungi on Growth and Physiological Performance of Catalpa bungei C.A. Mey. under Drought Stress. Forests, 11(10), 1-29. Https://doi.org/10.3390/f11101117
D’Abrosca, B., Fiorentino, A., Monaco, P., Oriano, P. & Pacifico, S. (2006). Annurcoic acid: A new antioxidant ursane triterpene from fruits of cv. Annurca apple. Food Chemistry, 98(2), 285-290. Https://doi.org/10.1016/j.foodchem.2005.05.072
Eshaghi Gorgi, O., Fallah, H., Niknejad, Y., & Barari Tari, D. (2022). Effect of Plant growth-promoting rhizobacteria (PGPR) and mycorrhizal fungi inoculations on essential oil in Melissa officinalis L. under drought stress. Biologia, 77(1), 11-20. Https://doi.org/10.1007/s11756-021-00919-2
Esmaielpour, B., Jalilvand, P., Hadian, J. (2013). Effects of drought stress and arbuscular mycorrhizal fungi on some morphophysiological traits and yield of savory (Satureja hortensis L.). Journal of Agroecology, 5(2), 169-177. Https://doi:10.22067/jag.v5i2.24496    
Fan, L., Dalpe, Y., Fang, Ch., Dube, C., & Khanizadeh, Sh. (2011). Influence of arbuscular Mycorrhizale on biomass and root morphology of selected strawberry cultivars under salt stress. Botany, 89(6), 397-403.
Fatemi, H., Azizi, M., Ravanbakhsh, M. (2025). Influence of drought stress on the growth of African basil (Ocimum gratissimum). Journal of Vegetables Sciences, 9(17), 169-178. .(In Persian). Https://doi.org/10.22034/iuvs.2023.2001866.1285
Giovannetti, M., & Mosse, B. (1980). An evaluation of techniques for measuring vesicular Arbuscular Mycorrhizal infection in roots. New Philologists, 84, 489-500. Https://doi.org/10.1111/j.1469-8137.1980.tb04556.x
Gupta, M. M. (2020). Arbuscular Mycorrhizal Fungi: The Potential Soil Health Indicators. Soil Health, 59, 183–195. Https://doi.org/10.1007/978-3-030-44364-1_11
Hu, W., Gao, M., Du, K., Liu, Y., Xu, B., Wang, Y., Zhou, Z. & Zhao, W. (2023). Combined effect of elevated temperature and drought stress on carbohydrate metabolism of cotton (Gossypium hirsutum L.) subtending leaves. Physiologia Plantarum, 175(1), e13866. Https://doi.org/10.1111/ppl.13866
Huang, D., Ma, M., Wang, Q., Zhang, M., Jing, G., Li, C. & Ma, F. (2020). Arbuscular mycorrhizal fungi enhanced drought resistance in apple by regulating genes in the MAPK pathway. Plant Physiology and Biochemistry, 149(1), 245–255. Https://doi.org/10.1016/j.plaphy.2020.02.020
Huang, X., Guo, W., Yang, L., Zou, Z., Zhang, X., Addo-Danso, S. D., Zhou, L. & Li, S. (2023). Effects of drought stress on non-structural carbohydrates in different organs of Cunninghamia lanceolata. Plants, 12(13), 1-15. Https://doi.org/10.3390/plants12132477 Idris, I., Fefirenta, A. D., Sari, V. K. & Sudiana, I. M. (2022). Arbuscular mycorrhizal fungi induced different proline accumulations in two sorghum accessions in a response to drought stress. Agriculture (Pol'nohospodárstvo), 68(3), 127-142. Https://doi.org/10.2478/agri-2022-0012
Irigoyen, J. J., Einerich, D. W. & Sánchez-Díaz, M. (1992). Water stress induced changes in concentrations of proline and total soluble sugars in nodulated alfalfa (Medicago sativa L.) plants. Physiologia Plantarum, 84(1), 55–60. Https://doi.org/10.1111/j.1399-3054.1992.tb08764.x
James, B., Rodel, D., Lorettu, U., Reynaldo, E. & Tariq, H. (2008). Effect of vesicular arboscular mycorrhiza (VAM) fungi inoculation on coppicing ability and drought resistance of Senna Spectabilis. Pakistan Journal of Botany, 40(5), 2217-2224. : Https://www.researchgate.net/publication/228495970
Khalvati, M. A., Mzafar, A. & Schmidhalter, U. (2005). Quantification of water uptake by arbuscular mycorrhizal hypha and its signification for leaf growth, water relations and gas exchange of barley subjected to drought stress. Plant Biology Stuttgart, 7(6), 706-712. Https://doi.org/10.1055/s-2005-872893
Ksouri, N., Jiménez, S., Wells, C. E., Contreras-Moreira, B. & Gogorcena, Y. (2016). Transcriptional Responses in Root and Leaf of Prunus persica under Drought Stress Using RNA Sequencing. Frontiers in Plant Science, 7(1), 1-19. Https://doi.org/10.3389/fpls.2016.01715 Lotfi, M., Abbaszadeh, B. & Mirza, M. (2014). The effect of drought stress on morphology, proline content and soluble carbohydrates of tarragon (Artemisia dracunculus L.). Iranian Journal of Medicinal and Aromatic Plants Research, 30(1), 19-29. (In Persian). Https://doi.org/10.22092/ijmapr.2014.5266
MacLean, A. M., Bravo, A. & Harrison, M. J. (2017). Plant signaling and metabolic pathways enabling arbuscular mycorrhizal symbiosis. The Plant Cell, 29(10), 2319–2335. Https://doi.org/10.1105/tpc.17.00555
Madouh, T. A. & Quoreshi, A. M. (2023). The Function of Arbuscular Mycorrhizal Fungi Associated with Drought Stress Resistance in Native Plants of Arid Desert Ecosystems: A Review. Diversity, 15(3), 1-17. Https://doi.org/10.3390/d15030391
Mohammadi, H., Amirikia, F., Ghorbanpour, M., Fatehi, F. & Hashempour, H. (2019). Salicylic acid induced changes in physiological traits and essential oil constituents in different ecotypes of Thymus kotschyanus and Thymus vulgaris under well-watered and water stress conditions. Industrial Crops and Products, 129(1), 561-574, Https://doi.org/10.1016/j.indcrop.2018.12.046
Mohebi, A. H. (2013). Influence of Mycorrhizal Symbiosis on the Uptake of Nutrients and Vegetative Characteristics of Barhee Date Palm (Phoenix dactylifera). Journal of Horticultural Science, 27(2), 110-116. (In Persian). Https://doi.org/10.22067/jhorts4.v0i0.24805
Okorie, V. O., Mphambukeli, T. N. & Amusan, S. O. (2019). Exploring the political economy of the water and food security nexus in BRICS. Africa Insight, 48(4), 21–38. t: Https://www.researchgate.net/publication/335030505
Omidi, H. (2010). Changes of proline content and activity of antioxidative enzymes in two canola genotypes under drought stress. American Journal of Plant Physiology, 5(6), 338-349. Https://doi.org/10.3923/ajpp.2010.338.349
Paquin, R. & Lechasseur, P. (2011). Observation sur une méthode de dosage de la proline libre dans les extraits de plants. Canadian Journal of Botany, 57(18), 1851-1854. Https://doi.org/10.1139/b79-233
Phillips, J.M., & Hayman, D.S. (1970). Improved procedures for clearing roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection. Transactions of the British Mycological Society, 55(1), 158-161. Https://doi.org/10.1016/S0007-1536(70)80110-3
Prabhu, D., Shankar, T., Sathyavathe, V. & Sankaralingam, S. (2013). Influence of Arbuscular mycorrhizal fungi on the growth of green gram (Vigna radiata L.) grown under water stress conditions. World Applied Sciences Journal, 25(4), 561-567. Https://doi.org/10.5829/idosi.wasj.2013.25.04.13124
Püschel, D., Bitterlich, M., Rydlová, J., & Jansa, J. (2021). Drought accentuates the role of mycorrhiza in phosphorus uptake. Soil Biology and Biochemistry, 157, 108243. Https://doi.org/10.1016/j.soilbio.2021.108243
Raeisi Sadati, F., Chamani, E., Sartip, A., Pazhohi, M., Sartip, H. (2023). The Effect of Silicon Foliar Application on Some Physiological Traits of Summer Savory (Satureja hortensis L.) under Drought Stress, Journal of Vegetables Sciences, 7(14), 178-194. (In Persian). Https://doi.org/10.22034/iuvs.2023.1986684.1268
Rani, B., Jatttan, M., Dhansu, P., Madan, S., Kumari, N., Sharma, K. D., Parshad, J., & Kumar, A. (2023). Mycorrhizal symbiosis improved drought resistance in wheat using physiological traits. Cereal Research Communications, 51(1), 115-124. Https://doi.org/10.1007/s42976-022-00281-2
Rasouli, F., Amini, T., Skrovankova, S., Asadi, M., Hassanpouraghdam, M. B., Ercisli, S., Buckova, M., Mrazkova, M. & Mlcek, J. (2023). Influence of drought stress and mycorrhizal (Funneliformis mosseae) symbiosis on growth parameters, chlorophyll fluorescence, antioxidant activity, and essential oil composition of summer savory (Satureja hortensis L.) plants. Frontiers in Plant Science, 14(1), 1-15. Https://doi.org/10.3389/fpls.2023.1151467
Rejae, F., Mohsenzadeh Golfazani, M., Moharramnejad, S., Samizadeh Lahiji, H. (2025). Investigation of superoxide dismutase profile & its gene expression in two sweet corn hybrids under drought stress, Journal of Vegetables Sciences, 9(17), 71-84. (In Persian). Https://doi.org/10.22034/iuvs.2023.2015045.1332
Ren, A. T., Zhu, Y., Chen, Y. L., Ren, H. X., Li, J. Y., Abbott, L. K. & Xiong, Y. C. (2019). Arbuscular mycorrhizal fungus alters root-sourced signal (abscisic acid) for better drought acclimation in Zea mays L. seedlings. Environmental and Experimental Botany, 167, 103824. Https://doi.org/10.1016/j.envexpbot.2019.103824
Rydlová, J. & Püschel, D. (2020). Arbuscular mycorrhiza, but not hydrogel, alleviates drought stress of ornamental plants in peat-based substrate. Applied Soil Ecology, 146, 103394. Https://doi.org/10.1016/j.apsoil.2019.103394
Sanches-blanco, M., Ferrandez, M., Morales, A., Morte, A. & Alarcón, J. (2004). Variations in water status, gas exchange, and growth in Rosmarinus officinalis plant infected with Glomus deserticola under drought conditions. Journal of Plant Physiology, 161(6), 675-682. Https://doi.org/10.1078/0176-1617-01191
Santander, C., Aroca, R., Ruiz-Lozano, J. M., Olave, J., Cartes, P., Borie, F. & Cornejo, P. (2017). Arbuscular mycorrhiza effects on plant performance under osmotic stress. Mycorrhiza, 27(7), 639–657. Https://doi.org/10.1007/s00572-017-0784-x
Schonfeld, M. A., Johnson, R. C., Carver, B. F. & Mornhinweg, D. W. (1988). Water relations in winter wheat as drought resistance indicators. Crop Science, 28(3), 526–531. Https://doi.org/10.2135/cropsci1988.00111X002800030021x
Selahvarzi, Y. & Kamali, M. (2022). Investigation of drought resistance of tarragon (Artemisia dracunculus L.) under different levels of titanium nanoparticles. Environmental Stresses in Crop Sciences, 15(1), 173-184. (In Persian). Http://dx.doi.org/10.22077/escs.2020.3571.1876
Selvaraj, T. & Chellappan, P., (2006). Arbuscular mycorrhizae: Adiverse personality. Journal of Central European Agriculture, 7(2), 349-358.
Siavash Moghaddam, S., Rahimi, A., Heydarzadeh, S., Moradzadeh, S., & Hasanloo, M. (2017). The effect of mycorrhizal symbiosis on the yield and biochemical traits of fenugreek under water deficit stress. Journal of Medicinal Plants Biotechnology, 3(1), 39-52. (In Persian).
Song, H. (2005). Effects of VAM on host plant in the condition of drought stress and its Mechanisms. Electronic Journal of Biology, 1(3): 44-48.
Spinoso-Castillo, J. L., Moreno-Hernández, M. D. R., Mancilla-Álvarez, E., Sánchez-Segura, L., Sánchez-Páez, R., & Bello-Bello, J. J. (2023). Arbuscular Mycorrhizal Symbiosis improves ex vitro acclimatization of sugarcane plantlets (Saccharum Spp.) under drought stress conditions. Plants, 12(3), 1-16. Https://doi.org/10.3390/plants12030687
Tao, J., Dong, F., Wang, Y., Chen, H. & Tang, M. (2022). Arbuscular mycorrhizal fungi enhance photosynthesis and drought tolerance by regulating MAPK gene expression of Populus simonii× P. nigra. Physiologia Plantarum, 174(6), e13829. Https://doi.org/10.1111/ppl.13829
Tekaya, M., Dabbaghi, O., Guesmi, A., Attia, F., Chehab, H., Khezami, L., Algathami, F. K., Ben Hamadi, N., Hammami, M., Prinsen, E. & Mechri, B. (2022). Arbuscular mycorrhizas modulate carbohydrate, phenolic compounds and hormonal metabolism to enhance water deficit tolerance of olive trees (Olea europaea). Agricultural Water Management, 274, 107947. Https://doi.org/10.1016/j.agwat.2022.107947
Tian, H., Jia, Z., Liu, W., Wei, X., Wang, H., Bao, G., Li, B. & Zhou, Q. (2023). Effects of Arbuscular Mycorrhizal Fungi on Growth and Nutrient Accumulation of Oat under Drought Conditions. Agronomy, 13(10), 1-13. Https://doi.org/10.3390/agronomy13102580
Wang, L., Wei, J., Shi, X., Qian, W., Mehmood, J., Yin, Y. & Jia, H. (2023a). Identification of the Light-Harvesting Chlorophyll a/b Binding Protein Gene Family in Peach (Prunus persica L.) and Their Expression under Drought Stress. Genes, 14(7), 1-15. Https://doi.org/10.3390/genes14071475
Wang, S., Ren, Y., Han, L., Nie, Y., Zhang, S., Xie, X., Hu, W., Chen, H. & Tang, M. (2023b). Insights on the Impact of Arbuscular Mycorrhizal Symbiosis on Eucalyptus grandis Tolerance to Drought Stress. Microbiology Spectrum, 11(2), e04381-22. Https://doi.org/10.1104/pp.16.00307
Wu, Q. S. & Zou, Y. N. (2017). Arbuscular mycorrhizal fungi and tolerance of drought stress in plants. In Arbuscular Mycorrhizas and Stress Tolerance of Plants, 25–41. https://doi.org/10.1007/978-981-10-4115-0_2
Yang, Q., Li, P., Zhang, D., Lin, W., Hao, X. & Zong, Y. (2023). Effects of Elevated CO2 on the Photosynthesis, Chlorophyll Fluorescence and Yield of Two Wheat Cultivars (Triticum aestivum L.) under Persistent Drought Stress. Sustainability, 15(2), 1-13. Https://doi.org/10.3390/su15021593   
Zare Gassanabadi, M., Dashti, M., & Akhondi, M. (2020). The Effect of Two Species of Arbuscular Mycorrhiza Fungi on the Activity of Antioxidant Enzymes and Morphophysiological Characteristics of Mentha pulegium L. in Drought Stress. Iranian Medicinal Plants Technology, 2(3), 83-99. Https://doi.org/10.22092/mpt.2020.127803.1049
Zhang, F., Wang, P., Zou, Y. N., Wu, Q. S. & Kuča, K. (2019). Effects of mycorrhizal fungi on root-hair growth and hormone levels of taproot and lateral roots in trifoliate orange under drought stress. Archives of Agronomy and Soil Science, 65(9), 1316–1330. Https://doi.org/10.1080/03650340.2018.1563780
Zou, Y.N., Wu, H.H., Giri, B., Wu, Q.S., & Kuča, K. (2019). Mycorrhizal symbiosis down-regulates or does not change root aquaporin expression in trifoliate orange under drought stress. Plant Physiology and Biochemistry, 144, 292-299. Https://doi.org/10.1016/j.plaphy.2019.10.001   
دوره 9، شماره 18
دو فصلنامه علوم سبزی ها- پاییز و زمستان 1404
دی 1404
صفحه 91-114

  • تاریخ دریافت 26 آذر 1402
  • تاریخ بازنگری 21 بهمن 1402
  • تاریخ پذیرش 30 بهمن 1402