Alizadeh, K., Rezaei-chiyaneh, E., Amir Nia, R. & Barin, M. (2020). Combined Application of
PGPR and Mycorrhizal Fungi on Seed yield, Macronutrients Uptake and Soil Biological Index in Intercropping Linseed (Linum usitatissimum L.) with Faba bean (Vicia faba L.). Journal Of Agricultural
Science And Sustainable Production, 30(1), 19-40. (In Persian)
Allen, R. G., Pereira, L. S., Raes, D., & Smith, M. (1998). FAO Irrigation and drainage paper No.
56. Rome: food and agriculture organization of the United Nations, 56(97), e156.
Amine-Khodja, I. R., Boscari, A., Riah, N., Kechid, M., Maougal, R. T., Belbekri, N., &
Djekoun, A. (2022). Impact of two strains of Rhizobium leguminosarum on the adaptation to terminal
water deficit of two cultivars Vicia faba. Plants, 11(4), 515.
Barpete, S., Gupta, P., Khawar, K. M., Özcan, S. E. B. A. H. A. T. T. İ. N., & Kumar, S. (2020).
In vitro approaches for shortening generation cycles and faster breeding of low β-N-oxalyl-L-α, βdiaminopropionic acid content of grass pea (Lathyrus sativus L.). Fresenius Environ Bull, 29(04A),
2698-2706.
Begum, N., Qin, C., Ahanger, M. A., Raza, S., Khan, M. I., Ashraf, M., ... & Zhang, L. (2019).
Role of arbuscular mycorrhizal fungi in plant growth regulation: implications in abiotic stress tolerance.
Frontiers in plant science, 10, 1068.
Borišev, M., Borišev, I., Župunski, M., Arsenov, D., Pajević, S., Ćurčić, Ž., ... & Djordjevic, A.
(2016). Drought impact is alleviated in sugar beets (Beta vulgaris L.) by foliar application of fullerenol
nanoparticles. PloS one, 10, 1-20.
Bradford, M. M. (1976). A 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.
Chapman, H. D., & Pratt, P. F. (1962). Methods of analysis for soils, plants and waters. Soil
Science, 93(1), 68.
Chen, D., Wang, S., Cao, B., Cao, D., Leng, G., Li, H., & Deng, X. (2016). Genotypic variation
in growth and physiological response to drought stress and re-watering reveals the critical role of
recovery in drought adaptation in maize seedlings. Frontiers in Plant Science, 6, 1241.
Chen, L., Zhang, X., Li, Q., Yang, X., Huang, Y., Zhang, B., ... & Li, X. (2024). Phosphatases:
Decoding the Role of mycorrhizal fungi in plant disease resistance. International Journal of Molecular
Sciences, 25(17), 9491.
de Freitas, V. F., Cerezini, P., Hungria, M., & Nogueira, M. A. (2022). Strategies to deal with
drought-stress in biological nitrogen fixation in soybean. Applied Soil Ecology, 172, 104352.
Ebrahimi, M., Zamani, G. R., & Alizadeh, Z. (2016). Antioxidant activity: a strategy for
alleviating the effects of drought on Calendula officinalis L. European Journal of Medicinal Plants,
15(4), 1-14.
Foster, K., Lambers, H., Real, D., Ramankutty, P., Cawthray, G. R., & Ryan, M. H. (2015).
Drought resistance and recovery in mature Bituminaria bituminosa var. albomarginata. Annals of
Applied Biology, 166(1), 154-169.
Furlan, A., Bianucci, E., del Carmen Tordable, M., Kleinert, A., Valentine, A., & Castro, S.
(2016). Dynamic responses of photosynthesis and the antioxidant system during a drought and
rehydration cycle in peanut plants. Functional Plant Biology, 43(4), 337-345.
Ghanbary, E., Fathizadeh, O. & Tabari, M. (2020). The effect of mycorrhizal fungi and growthpromoting rhizobacteria on the activity of antioxidant enzymes of Calotrope seedlings under drought
stress. Forest Research and Development, 6(3), 477-489. (In Persian)
Ghorbanli, M., Bakhshi Khaniki, G., & Zakeri, A. (2012). Investigation on the effects of water
stress on antioxidant compounds of Linum usitatissimum L. Iranian Journal of Medicinal and Aromatic
Plants Research, 27(4), 647-658. (In Persian)
Goldsmith, M., Barad, S., Peleg, Y., Albeck, S., Dym, O., Brandis, A., & Reich, Z. (2022). The
identification and characterization of an oxalyl-CoA synthetase from grass pea (Lathyrus sativus L.).
RSC chemical biology, 3(3), 320-333.
Gonçalves, L., Rubiales, D., Bronze, M. R., & Vaz Patto, M. C. (2022). Grass pea (Lathyrus
sativus L.)—A sustainable and resilient answer to climate challenges. Agronomy, 12(6), 1324.
Gong, Y., Lebreton, A., Zhang, F., & Martin, F. (2023). Role of carbohydrate-active enzymes in
mycorrhizal symbioses. Essays in Biochemistry, 67(3), 471-478.
Gurrieri, L., Merico, M., Trost, P., Forlani, G., & Sparla, F. (2020). Impact of drought on soluble
sugars and free proline content in selected Arabidopsis mutants. Biology, 9(11), 367.
Habibi, H., Motesharezadeh, B., & Alikhani, H. A. (2017). Effect of biochar and biological
treatments on nutrient elements content (P, K, Ca, Mg, Fe and Mn) of Amaranthus in oil polluted soil.
Iranian Journal of Soil and Water Research, 48(2), 369-384. (In Persian)
Hassanpour Darvishi, H. (2015). Effect of lead and zinc and mycorhiza fungi role on antioxidant
enzymes activity and biomarkers of destruction in alfalf, green pea and vetch. crop physiology journal,
6(24), 73-88. (In Persian)
Heath, R. L., & Packer, L. (1968). Photoperoxidation in isolated chloroplasts: I. Kinetics and
stoichiometry of fatty acid peroxidation. Archives of biochemistry and biophysics, 125(1), 189-198.
Hosseinzadeh, S. R., Amiri, H., & Ismaili, A. (2016). Effect of vermicompost fertilizer on
photosynthetic characteristics of chickpea (Cicer arietinum L.) under drought stress. Photosynthetica,
54, 87-92.
Khalafallah, A. A., & Abo-Ghalia, H. H. (2008). Effect of arbuscular mycorrhizal fungi on the
metabolic products and activity of antioxidant system in wheat plants subjected to short-term water
stress, followed by recovery at different growth stages. Journal of Applied Sciences Research, 4(5),
559-569.
Khan, N., Bano, A., Rahman, M. A., Guo, J., Kang, Z., & Babar, M. A. (2019). Comparative
physiological and metabolic analysis reveals a complex mechanism involved in drought tolerance in
chickpea (Cicer arietinum L.) induced by PGPR and PGRs. Scientific reports, 9(1), 2097.
Liang, X., Zhang, T., Lu, X., Ellsworth, D. S., BassiriRad, H., You, C., & Ye, Q. (2020). Global
response patterns of plant photosynthesis to nitrogen addition: A meta‐analysis. Global Change
Biology, 26(6), 3585-3600.
Ma, X., Li, X., & Ludewig, U. (2021). Arbuscular mycorrhizal colonization outcompetes root hairs
in maize under low phosphorus availability. Annals of botany, 127(1), 155-166.
Mohammad, I. (2019). Mycorrhizae’s role in plant nutrition and protection from pathogens.
Current Agriculture Research Journal, 8, 1037-1045.
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, 561-574.
Müller, A., Ngwene, B., Peiter, E., & George, E. (2017). Quantity and distribution of arbuscular
mycorrhizal fungal storage organs within dead roots. Mycorrhiza, 27, 201-210.
Namdari, A. & Baghbani- Arani, A. (2024). The Effect of Plant Residues, Mycorrhizal Symbiosis,
and Zinc Sulfate in Legume and Non-Legume Rotation on Nutrients Absorption and Wheat Yield.
Iranian Journal of Field Crop Science, 55(2), 73-88. (In Persian)
Niu, J., Zhang, S., Liu, S., Ma, H., Chen, J., Shen, Q., & Zhao, X. (2018). The compensation
effects of physiology and yield in cotton after drought stress. Journal of plant physiology, 224, 30-48.
Noreen, S., Fatima, K., Athar, H. U. R., Ahmad, S., & Hussain, K. (2017). Enhancement of
physio-biochemical parameters of wheat through exogenous application of salicylic acid under drought
stress. JAPS: Journal of Animal & Plant Sciences, 27(1).
Resende, C. F., Pacheco, V. S., Dornellas, F. F., Oliveira, A. M. S., Freitas, J. C. E., & Peixoto,
P. H. P. (2018). Responses of antioxidant enzymes, photosynthetic pigments and carbohydrates in
micropropagated Pitcairnia encholirioides LB Sm.(Bromeliaceae) under ex vitro water deficit and after
rehydration. Brazilian Journal of Biology, 79(1), 53-62.
Sairam, R. K., Rao, K. V., & Srivastava, G. C. (2002). Differential response of wheat genotypes
to long term salinity stress in relation to oxidative stress, antioxidant activity and osmolyte
concentration. Plant science, 163(5), 1037-1046.
Sandhya, V. S. K. Z., Ali, S. Z., Grover, M., Reddy, G., & Venkateswarlu, B. (2010). Effect of
plant growth promoting Pseudomonas spp. on compatible solutes, antioxidant status and plant growth
of maize under drought stress. Plant growth regulation, 62, 21-30.
Santos, C., Polanco, C., Rubiales, D., & Vaz Patto, M. C. (2021). The MLO1 powdery mildew
susceptibility gene in Lathyrus species: The power of high‐density linkage maps in comparative
mapping and synteny analysis. The Plant Genome, 14(2), e20090.
Sepehri, M., Jahandideh Mahjen Abadi, V. A., Asadi Rahmani, H., & Sadeghi Hosni, A.
(2015). Influence of Rhizobium leguminosarum bv phaseoli bacteria on growth, activity of antioxidant enzymes and nutrient uptake of common bean (Phaseolus vulgaris) under salinity stress. Journal of Soil
Management and Sustainable Production, 5(2), 165-180. (In Persian)
Soleymani, F., & Pirzad, A. (2016). The effect of mycorrhizal fungi on the oxidant enzymes
activity in the medicinal herb, hyssop, under water deficit conditions. Iranian Journal of Medicinal and
Aromatic Plants Research, 31(6), 1013-1023 . (In Persian)
Verma, A., Nidhi, N., Kaur, G., Mantri, S., Sharma, T. R., Pandey, A. K., & Kandoth, P. K.
(2022). Contrasting β‐ODAP content correlates with stress gene expression in Lathyrus cultivars.
Physiologia Plantarum, 174(1), e13616.
Wang, Y., Dong, F., Chen, H., Xu, T., & Tang, M. (2023). Effects of arbuscular mycorrhizal
fungus on sodium and chloride ion channels of Casuarina glauca under salt stress. International Journal
of Molecular Sciences, 24(4), 3680.
Zargar, S. M., Nagar, P., Deshmukh, R., Nazir, M., Wani, A. A., Masoodi, K. Z., & Rakwal,
R. (2017). Aquaporins as potential drought tolerance inducing proteins: towards instigating stress
tolerance. Journal of proteomics, 169, 233-238.
Zhang, W., Yu, L., Han, B., Liu, K., & Shao, X. (2022). Mycorrhizal inoculation enhances nutrient
absorption and induces insect-resistant defense of Elymus nutans. Frontiers in plant science, 13,
898969.
Zheng, W., Zeng, S., Bais, H., LaManna, J. M., Hussey, D. S., Jacobson, D. L., & Jin, Y. (2018).
Plant growth‐promoting rhizobacteria (PGPR) reduce evaporation and increase soil water retention.
Water Resources Research, 54(5), 3673-3687.