Afzal, I., Javed, T., Amirkhani, M., & Taylor, A. G. (2020). Modern seed technology: Seed coating delivery systems for enhancing seed and crop performance.
Agriculture,
10(11), 526.
https://doi.org/10.3390/agriculture10110526
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.
https://doi.org/10.3389/fpls.2019.01068
Bennett, A. E., & Groten, K. (2022). The costs and benefits of plant–arbuscular mycorrhizal fungal interactions.
Annual Review of Plant Biology,
73(1), 649-672.
https://doi.org/10.1146/annurev-arplant-102820-124504
Casenave, E. C., & Toselli, M. E. (2007). Hydropriming as a pre-treatment for cotton germination under thermal and water stress conditions.
Seed Science and Technology,
35(1), 88-98.
https://doi.org/10.15258/sst.2007.35.1.08
Chandrasekaran, M. (2022). Arbuscular mycorrhizal fungi mediated enhanced biomass, root morphological traits and nutrient uptake under drought stress: a meta-analysis.
Journal of Fungi,
8(7), 660.
https://doi.org/10.3390/jof8070660
Cheng, Y., Jiang, X., He, X., Wu, Z., Lv, Q., Zhao, S., Jia, B., Cao, Y., Liu, J., Luan, H., & Liu, J. (2025).
Bacillus velezensis 20507 promotes symbiosis between
Bradyrhizobium japonicum USDA110 and soybean by secreting flavonoids.
Frontiers in Microbiology,
16, 1572568.
https://doi.org/10.3389/fmicb.2025.1572568
Cozzolino, V., Monda, H., Savy, D., Di Meo, V., Vinci, G., & Smalla, K. (2021). Cooperation among phosphate-solubilizing bacteria, humic acids and arbuscular mycorrhizal fungi induces soil microbiome shifts and enhances plant nutrient uptake.
Chemical and Biological Technologies in Agriculture,
8(1), 31.
https://doi.org/10.1186/s40538-021-00230-x
Dubey, S. C., Tripathi, A., & Singh, B. (2012). Combination of soil application and seed treatment formulations of
Trichoderma species for integrated management of wet root rot caused by
Rhizoctonia solani in chickpea (
Cicer arietinum).
Indian Journal of Agriculture Science,
82(4), 357-364.
https://doi.org/10.56093/ijas.v82i4.16649
Fan, B., Blom, J., Klenk, H. P., & Borriss, R. (2017).
Bacillus amyloliquefaciens,
Bacillus velezensis, and
Bacillus siamensis form an “operational group B. amyloliquefaciens” within the B.
subtilis species complex.
Frontiers in Microbiology,
8, 22.
https://doi.org/10.3389/fmicb.2017.00022
Ghorbani, A., Jalilian, J., & Amirnia, R. (2013). The Effects of seed priming and superabsorbent on some quantity and quality characteristics of Kaboli chickpea (Cicer arietinum L.). Research in Field Crop Journal, 1(1), 44-53. (In Persian)
Javed, T., Afzal, I., Shabbir, R., Ikram, K., Zaheer, M. S., Faheem, M., Amirkhani, M., Taylor, A. G. & Iqbal, J. (2022). Seed coating technology: An innovative and sustainable approach for improving seed quality and crop performance.
Journal of the Saudi Society of Agricultural Sciences,
21(8), 536-545.
https://doi.org/10.1016/j.jssas.2022.03.003
Javidi, S., Azizi, M., & Yaghoobi, S. R. (2024). Evaluating the efficacy of biological and organic fertilizers in increasing soybean yield. Karafan Journal, 20(4), 391-406. (In Persian)
Li, J., Zhou, L., Chen, G., Yao, M., Liu, Z., Li, X., Xiang, D., Wang, K., Jiang, S., & Chen, X. (2025). Arbuscular mycorrhizal fungi enhance drought resistance and alter microbial communities in maize rhizosphere soil.
Environmental Technology & Innovation,
37, 103947.
https://doi.org/10.1016/j.eti.2024.103947
Muhammad, A., Kong, X., Zheng, S., Bai, N., Li, L., Khan, M. H. U., Gao, N., & Zhang, Z. (2024). Exploring plant-microbe interactions in adapting to abiotic stress under climate change: A review.
Frontiers in Plant Science,
15, 1482739.
https://doi.org/10.3389/fpls.2024.1482739
Nieto-Jacobo, M. F., Steyaert, J. M., Salazar-Badillo, F. B., Nguyen, D. V., Rostás, M., Braithwaite, M., & Mendoza-Mendoza, A. (2017). Environmental growth conditions of
Trichoderma spp. affects indole acetic acid derivatives, volatile organic compounds, and plant growth promotion.
Frontiers in Plant Science,
8, 102.
https://doi.org/10.3389/fpls.2017.00102
Prudent, M., Dequiedt, S., Sorin, C., Girodet, S., Nowak, V., Duc, G., Wolde, G., Tena, W., & Tamiru, T., & Maron, P. A. (2020). The diversity of soil microbial communities matters when legumes face drought.
Plant, Cell & Environment,
43(4), 1023-1035.
https://doi.org/10.1111/pce.13712
Rani, A., Devi, P., Jha, U. C., Sharma, K. D., Siddique, K. H., & Nayyar, H. (2020). Developing climate-resilient chickpea involving physiological and molecular approaches with a focus on temperature and drought stresses.
Frontiers in Plant Science,
10, 1759.
https://doi.org/10.3389/fpls.2019.01759
Rocha, I., Duarte, I., Ma, Y., Souza-Alonso, P., Látr, A., Vosátka, M., Buttrós, V. H., Pasqual, M., Dória, J., & Oliveira, R. S. (2019). Seed coating with arbuscular mycorrhizal fungi for improved field production of chickpea.
Agronomy,
9(8), 471.
https://doi.org/10.3390/agronomy9080471
Sabaghpour, H., Mahmoudi, A. A., Saeed, A., Kamel, M., & Malthora, R. S. (2006). Study on chickpea drought tolerance lines under dryland condition of Iran. Indian Journal of Crop Science, 1, 70-73.
Sain, S. K., Dewasi, H., & Singh, A. (2023). Combined application of effective
Trichoderma,
Pseudomonas and
Arbuscular mycorrhiza spp. reduced soil-borne diseases and boosted growth in cotton.
Egyptian Journal of Biological Pest Control,
33(1), 94.
https://doi.org/10.1186/s41938-023-00739-3
Santoyo, G., Guzmán-Guzmán, P., Parra-Cota, F. I., Santos-Villalobos, S. D. L., Orozco-Mosqueda, M. D. C., & Glick, B. R. (2021). Plant growth stimulation by microbial consortia.
Agronomy,
11(2), 219.
https://doi.org/10.3390/agronomy11020219
Shomeisi, A., Khodaei Joghan, A., Lotfi Jalal- Abadi, A., & Gharineh, M. H. (2023). Assessing yield response of quinoa to sugarcane residue compost and
Trichoderma asperelloides fungi and
Bacillus subtilis bacteria inoculation.
Journal of Agricultural Science and Sustainable Production,
32(4), 83-97. (In Persian).
https://doi.org/10.22034/saps.2022.48683.2760
Singh, P., Vaishnav, A., Liu, H., Xiong, C., Singh, H. B., & Singh, B. K. (2023). Seed biopriming for sustainable agriculture and ecosystem restoration
. Microbial Biotechnology, 16, 2212-2222.
https://doi.org/10.1111/1751-7915.14322
Valizadeh, S., Pouryousef Miandoab, M., & Alizadeh, K. (2024). The effect of three autumns, dormant and spring seeding dates on chickpea grain yield and weed interference under West Azerbaijan dryland conditions. Iranian Dryland Agronomy Journal, 12(2), 235-248. (In Persian).
Wahab, A., Muhammad, M., Munir, A., Abdi, G., Zaman, W., Ayaz, A., Ahmed, J., Kara, N., & Reddy, S. P. P. (2023). Role of arbuscular mycorrhizal fungi in regulating growth, enhancing productivity, and potentially influencing ecosystems under abiotic and biotic stresses. Plants, 12(17), 3102.
Wang, Y., Xie, J., Sun, Z., Wang, Q., & Yu, L. (2024). Effects of sowing dates and phosphorus application on seed yield and yield components of alfalfa.
Legume Research: An International Journal,
47(9), 152-164.
https://doi.org/10.18805/LRF-810
Zeng, W., Xiang, D., Li, X., Gao, Q., Chen, Y., Wang, K., Liu, X., Chang, L., Zhou, Y., & Xiang, H. (2025). Effects of combined inoculation of arbuscular mycorrhizal fungi and plant growth-promoting rhizosphere bacteria on seedling growth and rhizosphere microecology.
Frontiers in Microbiology,
15, 1475485.
https://doi.org/10.3389/fmicb.2024.1475485