Abrahám, E., Hourton-Cabassa, C., Erdei, L. & Szabados, L. 2010. Methods for determination of proline in plants. Methods in Molecular Biology 639: 317-331.
Alikhani, H., Saleh-Rastin, N. & Antoun, H. 2006. Phosphate solubilization activity of rhizobia native to Iranian soils. Plant and Soil 287: 35-41.
Amini Hajiabadi, A., Mosleh Arani, A., Ghasemi, S., Rad, M.H., Shabazi, S. & Etesami, H. 2021. The effect of plant growth promoting potentials of rhizosphere bacteria isolated from several halophytic species on vegetative growth and ionic content of wheat. Nova Biologica Reperta 8: 104-117.
Arkhipova, K., Galimsyanova, N., Kuzmina, L., Vysotskaya, L., Sidorova, L., Gabbasova, I., Melentiev, A. & Kudoyarova, G. 2019. Effect of seed bacterization with plant growth-promoting bacteria on wheat productivity and phosphorus mobility in the rhizosphere. Plant, Soil and Environment 65: 313-319.
Ayala, A., Muñoz, M.F. & Argüelles, S. 2014. Lipid peroxidation: production, metabolism, and signaling mechanisms of malondialdehyde and 4-hydroxy-2-nonenal. Oxidative Medicine and Cellular Longevity 4: 360438.
Backer, R., Rokem, J.S., Ilangumaran, G., Lamont, J., Praslickova, D., Ricci, E., Subramanian, S. & Smith, D.L. 2018. Plant growth-promoting rhizobacteria: Context, mechanisms of action, and roadmap to commercialization of biostimulants for sustainable agriculture. Frontiers in Plant Science 9: 1-17.
Bogi, D., Luqman Qurata, A. & Tutung, H. 2012. The Effect of PGPR (plant growth promoting rhizobacteria) Pseudomonas fluorescens and Bacillus subtilis on leaf mustard plant (Brassica Juncea L.) Infected by TuMV (Turnip Mosaic Virus). Journal of Tropical Plant Protection 1: 30-38.
Chandra, S., Askari, K. & Kumari, M. 2018. Optimization of indole acetic acid production by isolated bacteria from Stevia rebaudiana rhizosphere and its effects on plant growth. Journal of Genetic Engineering and Biotechnology 16: 581-586.
Czarnecki, O., Peter, E. & Grimm, B. 2011. Methods for analysis of photosynthetic pigments and steady-state levels of intermediates of tetrapyrrole biosynthesis. Methods in Molecular Biology 775: 357-385.
Dal Cortivo, C., Ferrari, M., Visioli, G., Lauro, M., Fornasier, F., Barion, G., Panozzo, A. & Vamerali, T. 2020. Effects of seed-applied biofertilizers on rhizosphere biodiversity and growth of common wheat (Triticum aestivum L.) in the field. Frontiers in Plant Science 11: 1-14.
Dar, M.I., Naikoo, M.I., Rehman, F., Naushin, F. & Khan, F.A. 2016. Proline accumulation in plants: roles in stress tolerance and plant development. Springer India 7: 155-166.
Gowtham, H., Murali, M., Singh, S.B., Lakshmeesha, T., Narasimha Murthy, K., Amruthesh, K. & Niranjana, S. 2018. Plant growth promoting rhizobacteria- Bacillus amyloliquefaciens improves plant growth and induces resistance in chilli against anthracnose disease. Biological Control 126: 209-217.
Gururani, M.A., Upadhyaya, C.P., Baskar, V., Venkatesh, J., Nookaraju, A. & Park, S.W. 2013. Plant growth-promoting rhizobacteria enhance abiotic stress tolerance in Solanum tuberosum through inducing changes in the expression of ROS-scavenging enzymes and improved photosynthetic performance. Journal of Plant Growth Regulation 32: 245-258.
Hashem, A., Tabassum, B. & Fathi Abd_Allah, E. 2019. Bacillus subtilis: A plant-growth promoting rhizobacterium that also impacts biotic stress. Saudi Journal of Biological Sciences 26: 1291-1297.
Khalid, A., Arshad, M. & Zahir, Z.A. 2004. Screening plant growth-promoting rhizobacteria for improving growth and yield of wheat. Journal of Applied Microbiology 96: 473-480.
Khan, A., Ding, Z., Ishaq, M., Khan, I., Ahmed, A., Khan, A. & Guo, X. 2020. Applications of beneficial plant growth promoting rhizobacteria and mycorrhizae in rhizosphere and plant growth: A review. International Journal of Agricultural and Biological Engineering 13: 199-208.
Kong, Z., Deng, Z., Glick, B.R., Wei, G. & Chou, M. 2017. A nodule endophytic plant growth-promoting Pseudomonas and its effects on growth, nodulation and metal uptake in Medicago lupulina under copper stress. Annals of Microbiology 67: 49-58.
Le, T.A., Pék, Z., Takács, S., Neményi, A., Daood, H.G. & Helyes, L. 2018. The effect of plant growth promoting rhizobacteria on the water-yield relationship and carotenoid production of processing tomatoes. HortScience Horts 53: 816-822.
Liu, X., Hegeman, A.D., Gardner, G. & Cohen, J.D. 2012. High-throughput and quantitative assays of auxin and auxin precursors from minute tissue samples. Plant Methods 8: 31-48.
Mahrokh, A., Nabipour, M., Roshanfekr Dezfuli, H. & Choukan, R. 2015. The effect of spraying auxine and cytokinine hormones on photosynthetic pigments and leaf proline amino acid in maize hybrid 704 under drought stress condition. Journal of Plant Process and Function 5: 165-179.
Nazarbeygi, E., Lari Yazdi, H., Naseri, R. & Soleimani, R. 2011. The effects of different levels of salinity on proline and A, B chlorophylls in canola. American-Eurasian Journal of Agricultural & Environmental Sciences 10: 70-74.
Nosheen, N., Bano, D., Ullah, F., Farooq, U., H, Y. & I, H. 2011. Effect of plant growth promoting rhizobacteria on root morphology of Safflower (Carthamus tinctorius L.). African Journal of Biotechnology 10: 1-11.
Park, J.M., Radhakrishnan, R., Kang, S.M. & Lee, I.J. 2015. IAA producing Enterobacter sp. I-3 as a potent bio-herbicide candidate for weed control: A special reference with lettuce growth inhibition. Indian Journal of Microbiology 55: 207-212.
Rahimi, A., Jamialahmadi, M., Khavazi, K., Sayyari-Zahan, M. & Yazdani, R. 2013. Effects of different pseudomonas flluoresence bacterium strains on yield, yield components and some traits of safflower. Plant Ecophysiology 5: 1-16.
Saleem, M., Asghar, H.N., Zahir, Z.A. & Shahid, M. 2018. Impact of lead tolerant plant growth promoting rhizobacteria on growth, physiology, antioxidant activities, yield and lead content in sunflower in lead contaminated soil. Chemosphere 195: 606-614.
Shahraki, A., Mohammadi-Sichani, M., Ranjbar, M. 2022. Identification of lead resistant rhizobacteria of Carthamus tinctorius and their effects on lead absorption of sunflower. Journal of Applied Microbiology (in press).
Shariati, J.V., Weisany, W. & Torabian, S. 2015. Effect of azotobacter and arbuscular mycorrhizal on growth of safflower (Carthamus tinctorius L.) at different irrigation regimes. Electronic Journal of Polish Agricultural Universities 18: 1-8.
Sharma, S.B., Sayyed, R.Z., Trivedi, M.H. & Gobi, T.A. 2013. Phosphate solubilizing microbes: sustainable approach for managing phosphorus deficiency in agricultural soils. SpringerPlus 2: 587-587.
Singh, R.P. & Jha, P.N. 2016. A halotolerant bacterium Bacillus licheniformis HSW-16 augments induced systemic tolerance to salt stress in wheat plant (Triticum aestivum). Frontiers in Plant Science 7: 1890.
Singh, V. & Nimbkar, N. 2016. Chapter 7 - Safflower. Breeding oilseed crops for sustainable production. S. K. Gupta. San Diego, Academic Press: 149-167.
Suliasih, S. & Widawati, S. 2020. Isolation of indole acetic acid (IAA) producing Bacillus siamensis from peat and optimization of the culture conditions for maximum IAA production. Journal of Earth and Environmental Science 572: 012025.
Sun, L., Wang, X. & Li, Y. 2016. Increased plant growth and copper uptake of host and non-host plants by metal-resistant and plant growth-promoting endophytic bacteria. International Journal of Phytoremediation 18: 494-501.
Wu, F., Li, J., Chen, Y., Zhang, L., Zhang, Y., Wang, S., Shi, X., Li, L. & Liang, J. 2019. Effects of phosphate solubilizing bacteria on the growth, photosynthesis, and nutrient uptake of Camellia oleifera Abel. Forests 10: 348-358.
Zhang, T., Hu, F. & Ma, L. 2018. Phosphate-solubilizing bacteria from safflower rhizosphere and their effect on seedling growth. Open Life Sciences 14: 246-254.
Zhao, Y. 2010. Auxin biosynthesis and its role in plant development. Annual Review of Plant Biology 61: 49-64.