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Year 2025, Volume: 29 Issue: 5, 562 - 571, 27.10.2025
https://doi.org/10.16984/saufenbilder.1698371

Abstract

References

  • T. ul G. Mir, A. K. Wani, J. Singh, S. Shukla, “Therapeutic application and toxicity associated with Crocus sativus (saffron) and its phytochemicals,” Pharmacological Research - Modern Chinese Medicine, vol. 4, 2022.
  • M. Sharma, R. Thakur, M. Sharma, “Ethnomedicinal, phytochemical and pharmacological properties of Crocus sativus (saffron),” The Journal of Indian Botanical Society, vol. 99, pp. 115–125, 2020.
  • M. R. Khazdair, M. Hossein Boskabady, M. Hosseini, R. Rezaee, A. M. Tsatsakis, “The effects of Crocus sativus (saffron) and its constituents on nervous system: A review,” Avicenna Journal of Phytomedicine, vol. 5, pp. 376–391, 2015.
  • M. Butnariu, C. Quispe, J. Herrera-Bravo, J. Sharifi-Rad, L. Singh, N. M. Aborehab, A. Bouyahya, A. Venditti, S. Sen, K. Acharya, M. Bashiry, S. M. Ezzat, W. N. Setzer, M. Martorell, K. S. Mileski, I. C. Bagiu, A. O. Docea, D. Calina, W. C. Cho, “The Pharmacological Activities of Crocus sativus L.: A Review Based on the Mechanisms and Therapeutic Opportunities of its Phytoconstituents,” Oxidative Medicine and Cellular Longevity, vol. 2022, 2022.
  • H. Asil, “Effects of Chelated Iron (Eddha-Fe) Treatments on Corm And Stigma Quality in Saffron (Crocus Sativus L.),” Bangladesh Journal of Botany, vol. 52, pp. 97–103, 2023.
  • A. Ozel, K. Erden, A. Özel, T. Demirbilek, “Determination of Optimum Corm Size for Saffron (Crocus sativus L.) and Corm Yield Under the Harran Plain Conditions,” vol. 12, 2017.
  • S. M. Jadouali, H. Atifi, Z. Bouzoubaa, K. Majourhat, S. Gharby, F. Achemchem, A. Elmoslih, A. Laknifli, R. Mamouni, “Chemical characterization, antioxidant and antibacterial activity of Moroccan Crocus sativus L petals and leaves,” Journal of Materials and Environmental Sciences, vol. 9, pp. 113–118, 2018.
  • R. Srivastava, H. Ahmed, R. Dixit, Dharamveer, S. Saraf, “Crocus sativus L.: A comprehensive review,” Pharmacognosy Reviews, vol. 4, pp. 200–208, 2010.
  • UN Comtrade, Leading saffron spice exporters worldwide in 2022 (in million U.S. dollars), 2023.
  • K. M. A. Rahman, D. Zhang, “Effects of fertilizer broadcasting on the excessive use of ınorganic fertilizers and environmental sustainability,” Sustainability 2018, vol. 10, Page 759, vol. 10, p. 759, 2018.
  • Z. A. Siddiqui, J. Pichtel, “Mycorrhizae: An overview,” in: Mycorrhizae: Sustainable Agriculture and Forestry, Springer Netherlands, pp. 1–35, 2008.
  • A. L. Alarcón, M. J. Gómez-Bellot, A. J. Bernabe, G. Calvo, F. Fernández Martín, “Changes in root architecture and productivity of melon (Cucumis melo L. cv. Hispano Nunhems) promoted by Glomus iranicum var. tenuihypharum,” Journal of Horticultural Science and Biotechnology, vol. 95, pp. 364–373, 2020.
  • G. Roccuzzo, F. Stagno, C. Frassineti, M. L. Maltoni, A. Assirelli, P. Sbrighi, G. Baruzzi, “Effects of arbuscular mycorrhizae Glomus iranicum var. tenuihypharum on strawberry fruit yield and quality,” Acta Horticulturae, vol. 1309, pp. 613–620, 2021.
  • F. Fernández, J. Juárez, A. J. Bernabe, F. J. García, J. M. Gómez, “Activity of the arbuscular mycorrhizal fungus, Glomus iranicum var. tenuihypharum var. nova, and its effect on citrus development in southeastern Spain,” Acta Horticulturae, vol. 1230, pp. 73–84, 2019.
  • M. Gürgan, S. Adiloğlu, “Phytoremediation and Purple Non Sulfur Bacteria, in: J.C. Flores (Ed.), The Future of Phytoremediation,” Nova Science Publishers, New York, pp. 221–244, 2021.
  • J. Sakpirom, D. Kantachote, T. Nunkaew, E. Khan, “Characterizations of purple non-sulfur bacteria isolated from paddy fields, and identification of strains with potential for plant growth-promotion, greenhouse gas mitigation and heavy metal bioremediation,” Research in Microbiology, vol. 168, pp. 266–275, 2017.
  • W.-T. Wong, C. Tseng, S.-H. Hsu, H.-S. Lur, C.-W. Mo, C.-N. Huang, S.-C. Hsu, K.-T. Lee, C.-T. Liu, “Promoting Effects of a Single Rhodopseudomonas palustris Inoculant on Plant Growth by Brassica rapa chinensis under Low Fertilizer Input,” Microbes and Environments, vol. 29, pp. 303–313, 2014.
  • T. Nunkaew, D. Kantachote, T. Nitoda, H. Kanzaki, “Selection of salt tolerant purple nonsulfur bacteria producing 5-aminolevulinic acid (ALA) and reducing methane emissions from microbial rice straw degradation,” Applied Soil Ecology, vol. 86, pp. 113–120, 2015.
  • T. Kantha, C. Chaiyasut, D. Kantachote, S. Sukrong, A. Muangprom, “Selection of photosynthetic bacteria producing 5-aminolevulinic acid from soil of organic saline paddy fields from the Northeast region of Thailand,” African Journal of Microbiology Research, vol. 4, pp. 1848–1855, 2010.
  • S. Kırıcı, B. Sevindik, Y. Yalçın Mendi, “Production of saffron in Turkey,” Acta Horticulturae, pp. 403–410, 2020.
  • F. Daldal, S. Cheng, J. Applebaum, E. Davidson, R. C. Princet, Cytochrome c2 is not essential for photosynthetic growth of Rhodopseudomonas capsulata, 1986.
  • S. Adiloglu, F. Eryilmaz Acikgoz, F. Irmak Yilmaz, Y. Solmaz, A. Adiloglu, “The Effect of Increasing Mycorrhiza Applications on Nutrition of Pak Choi (Brassica rapa L. subsp. chinensis L.) Plant,” International Journal of Secondary Metabolite, vol. 5, pp. 27–33, 2018.
  • M. Jackson, Soil Chemical Analysis, Prentice-Hall of India Pvt. Ltd, New Delhi, 1967.
  • M. T. Sağlam, Chemical analysis methods of soil and water, Namık Kemal University Publications, 2012.
  • G. J. Bouyoucos, “A Recalibration of the Hydrometer Method for Making Mechanical Analysis of Soils,” Agronomy Journal, vol. 43, pp. 434–438, 1951.
  • B. Kacar, Chemical analysis of Plant and Soil-III. Soil Analysis, A. U. Agriculture Facultu Education, Research and Development Society Publishing House, Ankara, 1995.
  • W. L. Lindsay, W. A. Norvell, “Development of a DTPA Soil Test for Zinc, Iron, Manganese, and Copper1,” Soil Science Society of America Journal, vol. 42, pp. 421–428, 1978.
  • B. Wolf, “The determination of boron in soil extracts, plant materials, composts, manures, water and nutrient solutions,” Soil Science and Plant Analysis, vol. 2, pp. 363–374, 1971.
  • Q. S. Wu, C. Y. Liu, D. J. Zhang, Y. N. Zou, X. H. He, Q. H. Wu, “Mycorrhiza alters the profile of root hairs in trifoliate orange,” Mycorrhiza, vol. 26, pp. 237–247, 2016.
  • M. Sheng, M. Tang, H. Chen, B. Yang, F. Zhang, Y. Huang, “Influence of arbuscular mycorrhizae on the root system of maize plants under salt stress,” Canadian Journal of Microbiology, vol. 55, pp. 879–886, 2009.
  • R. Hestrin, E. C. Hammer, C. W. Mueller, J. Lehmann, “Synergies between mycorrhizal fungi and soil microbial communities increase plant nitrogen acquisition,” Communications Biology 2019 2:1, vol. 2, pp. 1–9, 2019.
  • S.-M. Kang, R. Radhakrishnan, Y.-H. You, A. L. Khan, J.-M. Park, S.-M. Lee, I.-J. Lee, A. Latif Khan, “Cucumber performance is improved by inoculation with plant growth-promoting microorganisms,” Acta Agriculturae Scandinavica, Section B, vol. 65, pp. 34–44, 2014.
  • S. M. Kang, M. Imran, S. Shaffique, E. H. Kwon, Y. S. Park, I. J. Lee, “Growth and Photosynthetic Characteristics of Sesame Seedlings with Gibberellin-Producing Rhodobacter sphaeroides SIR03 and Biochar,” International Journal of Plant Biology 2022, vol. 13, pp. 257-269, 2022.
  • S. K. Lee, H. S. Lur, C. Te Liu, “From lab to farm: Elucidating the beneficial roles of photosynthetic bacteria in sustainable agriculture,” Microorganisms, vol. 9, p. 2453, 2021.
  • M. G. A. Van Der Heijden, R. D. Bardgett, N. M. Van Straalen, “The unseen majority: soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems,” Ecology Letters, vol. 11, pp. 296–310, 2008.
  • Y. Wang, S. Peng, Q. Hua, C. Qiu, P. Wu, X. Liu, X. Lin, “The Long-Term Effects of Using Phosphate-Solubilizing Bacteria and Photosynthetic Bacteria as Biofertilizers on Peanut Yield and Soil Bacteria Community,” Frontiers in Microbiology, vol. 12, p. 1871, 2021.
  • T. N. Huu, T. T. N. Giau, P. N. Ngan, T. T. B. Van, N. Q. Khuong, “Potential of Phosphorus Solubilizing Purple Nonsulfur Bacteria Isolated from Acid Sulfate Soil in Improving Soil Property, Nutrient Uptake, and Yield of Pineapple (Ananas comosus L. Merrill) under Acidic Stress,” Applied and Environmental Soil Science, vol. 2022, 2022.
  • M. S. Khan, E. Ahmad, A. Zaidi, M. Oves, “Functional aspect of phosphate-solubilizing bacteria: Importance in crop production,” in: Bacteria in Agrobiology: Crop Productivity, Springer-Verlag Berlin Heidelberg, pp. 237–263, 2013.
  • Q. Saeed, W. Xiukang, F. U. Haider, J. Kučerik, M. Z. Mumtaz, J. Holatko, M. Naseem, A. Kintl, M. Ejaz, M. Naveed, M. Brtnicky, A. Mustafa, “Rhizosphere bacteria in plant growth promotion, biocontrol, and bioremediation of contaminated sites: A comprehensive review of effects and mechanisms,” International Journal of Molecular Sciences, vol. 22, 2021.
  • M. Hawkesford, W. Horst, T. Kichey, H. Lambers, J. Schjoerring, I. S. Møller, P. White, “Functions of Macronutrients", in: Marschner’s Mineral Nutrition of Higher Plants: Third Edition, Elsevier Ltd, pp. 135–189, 2011.
  • O. S. Olanrewaju, B. R. Glick, O. O. Babalola, “Mechanisms of action of plant growth promoting bacteria,” World Journal of Microbiology & Biotechnology, vol. 33, p. 197, 2017.
  • M. Broadley, P. Brown, I. Cakmak, Z. Rengel, F. Zhao, “Function of nutrients: Micronutrients", in: Marschner’s Mineral Nutrition of Higher Plants: Third Edition, Elsevier Inc., pp. 191–248, 2011.
  • S. Adiloğlu, F. E. Açikgöz, M. Gürgan, “Use of phytoremediation for pollution removal of hexavalent chromium-contaminated acid agricultural soils,” Global Nest Journal, vol. 23, pp. 400–406, 2021.
  • W. Peng, X. Li, J. Song, W. Jiang, Y. Liu, W. Fan, “Bioremediation of cadmium- and zinc-contaminated soil using Rhodobacter sphaeroides,” Chemosphere, vol. 197, pp. 33–41, 2018.
  • H.-J. Bai, Z.-M. Zhang, G.-E. Yang, B.-Z. Li, "Bioremediation of cadmium by growing Rhodobacter sphaeroides: Kinetic characteristic and mechanism studies", Bioresource Technology, vol. 99, pp. 7716–7722, 2008.

Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron

Year 2025, Volume: 29 Issue: 5, 562 - 571, 27.10.2025
https://doi.org/10.16984/saufenbilder.1698371

Abstract

Saffron (Crocus sativus L.) is prized for its stigma, a valuable spice rich in bioactive compounds crucial for various industries and traditional medicine. Enriched with bioactive compounds crucial for numerous industries and traditional medicinal practices, saffron cultivation expansion hinges on assessing the vegetative process in soils with low organic content. Optimal fertilization, considering plant and soil conditions, is crucial. Leaves indicate vegetative status and serve as an agricultural byproduct. In this study, saffron was grown in clay loam soil (1.88% organic matter) with supplementation of the bacterium Rhodobacter sphaeroides, spores of an arbuscular mycorrhizal fungus Glomus iranicum var. tenuihypharum, and both. Sole bacterium application increased leaf fresh and dry weight by 25.5% and 36.8%, respectively, demonstrating growth promotion. Rhodobacter sphaeroides and AMF combination elevated leaf P, Mg, and Cu concentrations, while AMF alone increased Zn, Mn, and B accumulation. Rhodobacter sphaeroides reduced Fe, Zn, Mn, and B soil concentrations, with no corresponding increase in their accumulation in the plant, as observed with mycorrhiza and the combination of microorganisms, hinting at its applicability for saffron cultivation in environments contaminated with heavy metals. In summary, the findings underscore the importance of microorganism supplementation in saffron cultivation, offering insights into optimizing growth conditions.

References

  • T. ul G. Mir, A. K. Wani, J. Singh, S. Shukla, “Therapeutic application and toxicity associated with Crocus sativus (saffron) and its phytochemicals,” Pharmacological Research - Modern Chinese Medicine, vol. 4, 2022.
  • M. Sharma, R. Thakur, M. Sharma, “Ethnomedicinal, phytochemical and pharmacological properties of Crocus sativus (saffron),” The Journal of Indian Botanical Society, vol. 99, pp. 115–125, 2020.
  • M. R. Khazdair, M. Hossein Boskabady, M. Hosseini, R. Rezaee, A. M. Tsatsakis, “The effects of Crocus sativus (saffron) and its constituents on nervous system: A review,” Avicenna Journal of Phytomedicine, vol. 5, pp. 376–391, 2015.
  • M. Butnariu, C. Quispe, J. Herrera-Bravo, J. Sharifi-Rad, L. Singh, N. M. Aborehab, A. Bouyahya, A. Venditti, S. Sen, K. Acharya, M. Bashiry, S. M. Ezzat, W. N. Setzer, M. Martorell, K. S. Mileski, I. C. Bagiu, A. O. Docea, D. Calina, W. C. Cho, “The Pharmacological Activities of Crocus sativus L.: A Review Based on the Mechanisms and Therapeutic Opportunities of its Phytoconstituents,” Oxidative Medicine and Cellular Longevity, vol. 2022, 2022.
  • H. Asil, “Effects of Chelated Iron (Eddha-Fe) Treatments on Corm And Stigma Quality in Saffron (Crocus Sativus L.),” Bangladesh Journal of Botany, vol. 52, pp. 97–103, 2023.
  • A. Ozel, K. Erden, A. Özel, T. Demirbilek, “Determination of Optimum Corm Size for Saffron (Crocus sativus L.) and Corm Yield Under the Harran Plain Conditions,” vol. 12, 2017.
  • S. M. Jadouali, H. Atifi, Z. Bouzoubaa, K. Majourhat, S. Gharby, F. Achemchem, A. Elmoslih, A. Laknifli, R. Mamouni, “Chemical characterization, antioxidant and antibacterial activity of Moroccan Crocus sativus L petals and leaves,” Journal of Materials and Environmental Sciences, vol. 9, pp. 113–118, 2018.
  • R. Srivastava, H. Ahmed, R. Dixit, Dharamveer, S. Saraf, “Crocus sativus L.: A comprehensive review,” Pharmacognosy Reviews, vol. 4, pp. 200–208, 2010.
  • UN Comtrade, Leading saffron spice exporters worldwide in 2022 (in million U.S. dollars), 2023.
  • K. M. A. Rahman, D. Zhang, “Effects of fertilizer broadcasting on the excessive use of ınorganic fertilizers and environmental sustainability,” Sustainability 2018, vol. 10, Page 759, vol. 10, p. 759, 2018.
  • Z. A. Siddiqui, J. Pichtel, “Mycorrhizae: An overview,” in: Mycorrhizae: Sustainable Agriculture and Forestry, Springer Netherlands, pp. 1–35, 2008.
  • A. L. Alarcón, M. J. Gómez-Bellot, A. J. Bernabe, G. Calvo, F. Fernández Martín, “Changes in root architecture and productivity of melon (Cucumis melo L. cv. Hispano Nunhems) promoted by Glomus iranicum var. tenuihypharum,” Journal of Horticultural Science and Biotechnology, vol. 95, pp. 364–373, 2020.
  • G. Roccuzzo, F. Stagno, C. Frassineti, M. L. Maltoni, A. Assirelli, P. Sbrighi, G. Baruzzi, “Effects of arbuscular mycorrhizae Glomus iranicum var. tenuihypharum on strawberry fruit yield and quality,” Acta Horticulturae, vol. 1309, pp. 613–620, 2021.
  • F. Fernández, J. Juárez, A. J. Bernabe, F. J. García, J. M. Gómez, “Activity of the arbuscular mycorrhizal fungus, Glomus iranicum var. tenuihypharum var. nova, and its effect on citrus development in southeastern Spain,” Acta Horticulturae, vol. 1230, pp. 73–84, 2019.
  • M. Gürgan, S. Adiloğlu, “Phytoremediation and Purple Non Sulfur Bacteria, in: J.C. Flores (Ed.), The Future of Phytoremediation,” Nova Science Publishers, New York, pp. 221–244, 2021.
  • J. Sakpirom, D. Kantachote, T. Nunkaew, E. Khan, “Characterizations of purple non-sulfur bacteria isolated from paddy fields, and identification of strains with potential for plant growth-promotion, greenhouse gas mitigation and heavy metal bioremediation,” Research in Microbiology, vol. 168, pp. 266–275, 2017.
  • W.-T. Wong, C. Tseng, S.-H. Hsu, H.-S. Lur, C.-W. Mo, C.-N. Huang, S.-C. Hsu, K.-T. Lee, C.-T. Liu, “Promoting Effects of a Single Rhodopseudomonas palustris Inoculant on Plant Growth by Brassica rapa chinensis under Low Fertilizer Input,” Microbes and Environments, vol. 29, pp. 303–313, 2014.
  • T. Nunkaew, D. Kantachote, T. Nitoda, H. Kanzaki, “Selection of salt tolerant purple nonsulfur bacteria producing 5-aminolevulinic acid (ALA) and reducing methane emissions from microbial rice straw degradation,” Applied Soil Ecology, vol. 86, pp. 113–120, 2015.
  • T. Kantha, C. Chaiyasut, D. Kantachote, S. Sukrong, A. Muangprom, “Selection of photosynthetic bacteria producing 5-aminolevulinic acid from soil of organic saline paddy fields from the Northeast region of Thailand,” African Journal of Microbiology Research, vol. 4, pp. 1848–1855, 2010.
  • S. Kırıcı, B. Sevindik, Y. Yalçın Mendi, “Production of saffron in Turkey,” Acta Horticulturae, pp. 403–410, 2020.
  • F. Daldal, S. Cheng, J. Applebaum, E. Davidson, R. C. Princet, Cytochrome c2 is not essential for photosynthetic growth of Rhodopseudomonas capsulata, 1986.
  • S. Adiloglu, F. Eryilmaz Acikgoz, F. Irmak Yilmaz, Y. Solmaz, A. Adiloglu, “The Effect of Increasing Mycorrhiza Applications on Nutrition of Pak Choi (Brassica rapa L. subsp. chinensis L.) Plant,” International Journal of Secondary Metabolite, vol. 5, pp. 27–33, 2018.
  • M. Jackson, Soil Chemical Analysis, Prentice-Hall of India Pvt. Ltd, New Delhi, 1967.
  • M. T. Sağlam, Chemical analysis methods of soil and water, Namık Kemal University Publications, 2012.
  • G. J. Bouyoucos, “A Recalibration of the Hydrometer Method for Making Mechanical Analysis of Soils,” Agronomy Journal, vol. 43, pp. 434–438, 1951.
  • B. Kacar, Chemical analysis of Plant and Soil-III. Soil Analysis, A. U. Agriculture Facultu Education, Research and Development Society Publishing House, Ankara, 1995.
  • W. L. Lindsay, W. A. Norvell, “Development of a DTPA Soil Test for Zinc, Iron, Manganese, and Copper1,” Soil Science Society of America Journal, vol. 42, pp. 421–428, 1978.
  • B. Wolf, “The determination of boron in soil extracts, plant materials, composts, manures, water and nutrient solutions,” Soil Science and Plant Analysis, vol. 2, pp. 363–374, 1971.
  • Q. S. Wu, C. Y. Liu, D. J. Zhang, Y. N. Zou, X. H. He, Q. H. Wu, “Mycorrhiza alters the profile of root hairs in trifoliate orange,” Mycorrhiza, vol. 26, pp. 237–247, 2016.
  • M. Sheng, M. Tang, H. Chen, B. Yang, F. Zhang, Y. Huang, “Influence of arbuscular mycorrhizae on the root system of maize plants under salt stress,” Canadian Journal of Microbiology, vol. 55, pp. 879–886, 2009.
  • R. Hestrin, E. C. Hammer, C. W. Mueller, J. Lehmann, “Synergies between mycorrhizal fungi and soil microbial communities increase plant nitrogen acquisition,” Communications Biology 2019 2:1, vol. 2, pp. 1–9, 2019.
  • S.-M. Kang, R. Radhakrishnan, Y.-H. You, A. L. Khan, J.-M. Park, S.-M. Lee, I.-J. Lee, A. Latif Khan, “Cucumber performance is improved by inoculation with plant growth-promoting microorganisms,” Acta Agriculturae Scandinavica, Section B, vol. 65, pp. 34–44, 2014.
  • S. M. Kang, M. Imran, S. Shaffique, E. H. Kwon, Y. S. Park, I. J. Lee, “Growth and Photosynthetic Characteristics of Sesame Seedlings with Gibberellin-Producing Rhodobacter sphaeroides SIR03 and Biochar,” International Journal of Plant Biology 2022, vol. 13, pp. 257-269, 2022.
  • S. K. Lee, H. S. Lur, C. Te Liu, “From lab to farm: Elucidating the beneficial roles of photosynthetic bacteria in sustainable agriculture,” Microorganisms, vol. 9, p. 2453, 2021.
  • M. G. A. Van Der Heijden, R. D. Bardgett, N. M. Van Straalen, “The unseen majority: soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems,” Ecology Letters, vol. 11, pp. 296–310, 2008.
  • Y. Wang, S. Peng, Q. Hua, C. Qiu, P. Wu, X. Liu, X. Lin, “The Long-Term Effects of Using Phosphate-Solubilizing Bacteria and Photosynthetic Bacteria as Biofertilizers on Peanut Yield and Soil Bacteria Community,” Frontiers in Microbiology, vol. 12, p. 1871, 2021.
  • T. N. Huu, T. T. N. Giau, P. N. Ngan, T. T. B. Van, N. Q. Khuong, “Potential of Phosphorus Solubilizing Purple Nonsulfur Bacteria Isolated from Acid Sulfate Soil in Improving Soil Property, Nutrient Uptake, and Yield of Pineapple (Ananas comosus L. Merrill) under Acidic Stress,” Applied and Environmental Soil Science, vol. 2022, 2022.
  • M. S. Khan, E. Ahmad, A. Zaidi, M. Oves, “Functional aspect of phosphate-solubilizing bacteria: Importance in crop production,” in: Bacteria in Agrobiology: Crop Productivity, Springer-Verlag Berlin Heidelberg, pp. 237–263, 2013.
  • Q. Saeed, W. Xiukang, F. U. Haider, J. Kučerik, M. Z. Mumtaz, J. Holatko, M. Naseem, A. Kintl, M. Ejaz, M. Naveed, M. Brtnicky, A. Mustafa, “Rhizosphere bacteria in plant growth promotion, biocontrol, and bioremediation of contaminated sites: A comprehensive review of effects and mechanisms,” International Journal of Molecular Sciences, vol. 22, 2021.
  • M. Hawkesford, W. Horst, T. Kichey, H. Lambers, J. Schjoerring, I. S. Møller, P. White, “Functions of Macronutrients", in: Marschner’s Mineral Nutrition of Higher Plants: Third Edition, Elsevier Ltd, pp. 135–189, 2011.
  • O. S. Olanrewaju, B. R. Glick, O. O. Babalola, “Mechanisms of action of plant growth promoting bacteria,” World Journal of Microbiology & Biotechnology, vol. 33, p. 197, 2017.
  • M. Broadley, P. Brown, I. Cakmak, Z. Rengel, F. Zhao, “Function of nutrients: Micronutrients", in: Marschner’s Mineral Nutrition of Higher Plants: Third Edition, Elsevier Inc., pp. 191–248, 2011.
  • S. Adiloğlu, F. E. Açikgöz, M. Gürgan, “Use of phytoremediation for pollution removal of hexavalent chromium-contaminated acid agricultural soils,” Global Nest Journal, vol. 23, pp. 400–406, 2021.
  • W. Peng, X. Li, J. Song, W. Jiang, Y. Liu, W. Fan, “Bioremediation of cadmium- and zinc-contaminated soil using Rhodobacter sphaeroides,” Chemosphere, vol. 197, pp. 33–41, 2018.
  • H.-J. Bai, Z.-M. Zhang, G.-E. Yang, B.-Z. Li, "Bioremediation of cadmium by growing Rhodobacter sphaeroides: Kinetic characteristic and mechanism studies", Bioresource Technology, vol. 99, pp. 7716–7722, 2008.
There are 45 citations in total.

Details

Primary Language English
Subjects Biochemistry and Cell Biology (Other)
Journal Section Research Article
Authors

Muazzez Gürgan Eser 0000-0002-2966-1510

Sevinç Yeşilyurt 0000-0002-0062-0491

Seda Pamay 0000-0002-9487-925X

Early Pub Date October 21, 2025
Publication Date October 27, 2025
Submission Date May 14, 2025
Acceptance Date September 10, 2025
Published in Issue Year 2025 Volume: 29 Issue: 5

Cite

APA Gürgan Eser, M., Yeşilyurt, S., & Pamay, S. (2025). Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron. Sakarya University Journal of Science, 29(5), 562-571. https://doi.org/10.16984/saufenbilder.1698371
AMA Gürgan Eser M, Yeşilyurt S, Pamay S. Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron. SAUJS. October 2025;29(5):562-571. doi:10.16984/saufenbilder.1698371
Chicago Gürgan Eser, Muazzez, Sevinç Yeşilyurt, and Seda Pamay. “Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron”. Sakarya University Journal of Science 29, no. 5 (October 2025): 562-71. https://doi.org/10.16984/saufenbilder.1698371.
EndNote Gürgan Eser M, Yeşilyurt S, Pamay S (October 1, 2025) Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron. Sakarya University Journal of Science 29 5 562–571.
IEEE M. Gürgan Eser, S. Yeşilyurt, and S. Pamay, “Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron”, SAUJS, vol. 29, no. 5, pp. 562–571, 2025, doi: 10.16984/saufenbilder.1698371.
ISNAD Gürgan Eser, Muazzez et al. “Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron”. Sakarya University Journal of Science 29/5 (October2025), 562-571. https://doi.org/10.16984/saufenbilder.1698371.
JAMA Gürgan Eser M, Yeşilyurt S, Pamay S. Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron. SAUJS. 2025;29:562–571.
MLA Gürgan Eser, Muazzez et al. “Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron”. Sakarya University Journal of Science, vol. 29, no. 5, 2025, pp. 562-71, doi:10.16984/saufenbilder.1698371.
Vancouver Gürgan Eser M, Yeşilyurt S, Pamay S. Investigation of a Bacterial and Arbuscular Mycoorhizal Fungus Spore Inoculation in Cultivation of Saffron. SAUJS. 2025;29(5):562-71.


INDEXING & ABSTRACTING & ARCHIVING

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30930Bu eser Creative Commons Atıf-Ticari Olmayan 4.0 Uluslararası Lisans   kapsamında lisanslanmıştır .