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Determination of Plant Growth Enhancing Properties of Endophytic Fungi Obtained from Hypericum perforatum

Year 2025, Volume: 15 Issue: 4, 1256 - 1267
https://doi.org/10.21597/jist.1748680

Abstract

Plant growth-promoting fungi (PGPF) are non-pathogenic microorganisms that confer various physiological benefits to host plants and play a significant role in sustainable agricultural practices. With the increasing global demand for plant-based production, the use of PGPF is considered an environmentally friendly and effective strategy to enhance crop yield without causing ecological harm. In this study, endophytic fungi isolated from Hypericum perforatum (St. John's Wort) were evaluated for their plant growth-promoting potential through siderophore production, indole-3-acetic acid (IAA) synthesis, phosphate solubilization, and ACC deaminase activity. In addition, the antimicrobial activities of these isolates were assessed against key plant and soil pathogens including Rhizoctonia solani, Aspergillus fumigatus, Candida albicans, Staphylococcus aureus, and Klebsiella pneumoniae. According to the results, the F3 isolate stood out with its high siderophore and IAA production, as well as strong antimicrobial activity. F16 and F7 demonstrated the highest ACC deaminase activity, while F9, F21, and F22 were positive for phosphate solubilization. Isolates F3, F7, and F5 exhibited strong inhibition against several pathogens, with F3 showing remarkable performance across all tested parameters. Furthermore, F9 and F10 isolates were also notable for their growth-promoting characteristics. These findings suggest that certain endophytic fungal isolates hold promise as biofertilizer candidates and could be effectively utilized in sustainable agriculture.

References

  • Angın H, Dadaşoğlu E, 2022. PGPR İzolatlarının Bazı Fasulye Genotiplerinde Bitki Gelişimi Üzerine Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 12(4): 2495- 2505.
  • Antoun, H., & Prévost, D. (2005). Ecology of plant growth promoting rhizobacteria. In Z. A. Siddiqui (Ed.), PGPR: Biocontrol and biofertilization (pp. 1–38). Springer.
  • Barriuso, J., Ramos Solano, B., Lucas, J. A., Lobo, A. P., García-Villaraco, A., & Gutiérrez Mañero, F. J. (2008). Ecology, genetic diversity and screening strategies of plant growth promoting rhizobacteria (PGPR). In Plant-bacteria interactions: Strategies and techniques to promote plant growth (pp. 1–17).
  • Bayman, P., & Porras-Alfaro, A. (2011). Hidden fungi, emergent properties: Endophytes and microbiomes. Annual Review of Phytopathology, 49, 291–315. https://doi.org/10.1146/annurev-phyto-080508-081831
  • Bektas, Ġ., Seyrekoglu, F., Kusek, M., & Ceyhan BaĢaran, C. (2023). Determination of Antifungal Activity of Leaf Extracts from Hypericum ssp. Against Plant Pathogenic Fungi Fusarium oxysporum and Alternaria alternata. Journal of the Institute of Science and Technology, 13(4), 2364-2372.
  • Beram, R. C., Beram, A., & Doğmuş Lehtijarvi, H. T. (2016). Fungal endofitler ve etkileşimleri. MAKÜ Fen Bilimleri Enstitüsü Dergisi, 7(2), 161–166.
  • Çebi Kılıçoğlu, M., Baialieva, G., & Özkoç, İ. (2024). Molecular characterization of fungal endophytes associated with Hypericum perforatum in Samsun, Turkey. World News of Natural Sciences, 54, 58–69.
  • Compant, S., Reiter, B., Sessitsch, A., Nowak, J., Clément, C., & Barka, E. A. (2005). Endophytic colonization of Vitis vinifera L. by plant growth-promoting bacterium Burkholderia sp. strain PsJN. Applied and Environmental Microbiology, 71(3), 1685–1693.
  • Denef, K., Bubenheim, H., Lenhart, K., Vermeulen, J., Van Cleemput, O., Boeckx, P., & Müller, C. (2007). Community shifts and carbon translocation within metabolically-active rhizosphere microorganisms in grasslands under elevated CO₂. Biogeosciences, 4(5), 769–779.
  • Elsharkawy, M. M., & El-Khateeb, A. Y. (2019). Induction of resistance against Rhizoctonia solani causing root rot and damping-off in common bean by Bacillus subtilis and Trichoderma harzianum. Plant Pathology Journal, 35(2), 124–135.
  • Fürnkranz, M., Müller, H., & Berg, G. (2009). Characterization of plant growth promoting bacteria from crops in Bolivia. Journal of Plant Diseases and Protection, 116(4), 149–155.
  • Gahan, J., & Schmalenberger, A. (2014). The role of bacteria and mycorrhiza in plant nutrient cycling. In D. Gupta & J. Uniyal (Eds.), Biotechnology of biofertilizers (pp. 1–16). Springer.
  • Garcia, K. (2012). CAS agar based siderophore detection and its application. Methods in Molecular Biology, 954, 17–28.
  • Goswami, D., Thakker, J. N., & Dhandhukia, P. C. (2016). Portraying mechanics of plant growth promoting rhizobacteria (PGPR): A review. Cogent Food & Agriculture, 2(1), 1127500. https://doi.org/10.1080/23311932.2015.1127500
  • Gupta, S. S., Parihar, N. K., Ahirwar, S. K., Snehi, V., & Singh, V. (2015). Plant growth promoting rhizobacteria (PGPR): Current and future prospects for development of sustainable agriculture. Journal of Microbial & Biochemical Technology, 7(2), 96–102.
  • Hossain, M. M., Sultana, F., & Islam, S. (2017). Plant growth-promoting fungi (PGPF): Phytostimulation and induced systemic resistance. In D. P. Singh et al. (Eds.), Plant-microbe interactions in agro-ecological perspectives: Volume 2: Microbial interactions and agro-ecological impacts (pp. 135–191). Springer.
  • Karaman, A., Taşar, N., Yazdıç, F.C. ve Gedik, O. (2023). Hypericum L. Cinsine Ait Bazı Türlerin Uçucu Yağ Bileşenlerinin Antimikrobiyal Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 13(1), 73-79.
  • Khosa, R. L., & Bhatia, N. (1982). Antifungal effect of Hypericum perforatum. Indian Journal of Pharmacology, 14(3), 241–243.
  • Kaur, S., Reddy, M. S., & Kumar, V. (2016). Endophytic fungi: As efficient tools for plant growth promotion and sustainable agriculture. In V. Kumar & M. K. Dubey (Eds.), Plant growth-promoting microbes for sustainable agricultural production (pp. 119–135). Springer.
  • Kaymak, H. C. (2010). Bitki büyümesini teşvik eden mikroorganizmalar (PGPM) ve tarımda kullanımı. Ankara Üniversitesi Ziraat Fakültesi Dergisi, 16(2), 101–115.
  • Lynch, J. P. (2019). Root phenotypes for improved nutrient capture: An underexploited opportunity for global agriculture. New Phytologist, 223(2), 548–564. https://doi.org/10.1111/nph.15738
  • Martinez-Viveros, O., Jorquera, M. A., Crowley, D. E., Gajardo, G., & Mora, M. L. (2010). Mechanisms and practical considerations involved in plant growth promotion by rhizobacteria. Journal of Soil Science and Plant Nutrition, 10(3), 293–319.
  • Mendes, R., Garbeva, P., & Raaijmakers, J. M. (2013). The rhizosphere microbiome: Significance of plant beneficial, plant pathogenic, and human pathogenic microorganisms. FEMS Microbiology Reviews, 37(5), 634–663. https://doi.org/10.1111/1574-6976.12028
  • Murashige, T., & Skoog, F. (1962). A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiologia plantarum, 15(3).
  • Mustafa, L. B., Al-Bayati, A. I. N., & Özkoç, I. (2024a). Salt-tolerant endophytic Pseudomonas putida isolated from Aronia prunifolia root with plant growth-promoting potential. World News of Natural Sciences, 53, 212-222.
  • Mustafa, L., Al-bayati, A. I. N., Albayati, D., & Özkoç, İ. (2024b). Biogenic Synthesis of Silver and Iron Oxide Nanoparticles Using Aronia prunifolia Leaf Extract and Its Inhibitory Action Against Pathogenic Fungi. Karadeniz Fen Bilimleri Dergisi, 14(2), 589-604.
  • Özimek, E. (2018). The role of plant growth-promoting rhizobacteria (PGPR) in alleviating abiotic stresses in plants. Acta Agrobotanica, 71(4), 1–15.
  • Özkoç, I., Bilgi, M., Gurkanli, C. T., ve Mustafa, L. B. (2023). Bazı Orkide Türlerinde Ekim Öncesi Tohum Uygulamaları ve Bu Uygulamaların Tohum Çimlenme ve Gelişmesine Olan Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 13(4), 2476-2484.
  • Patil, S. V., Jadhav, J. P., & Ghosh, J. S. (2016). Endophytic fungi: A new source of bioactive compounds. Journal of Current Microbiology and Applied Sciences, 5(4), 491–502.
  • Porras-Alfaro, A., & Bayman, P. (2011). Hidden fungi, emergent properties: Endophytes and microbiomes. Annual Review of Phytopathology, 49, 291–315.
  • Rajagopal, K. (1998). Biology and ecology of endophytic fungi from tropical trees with special reference to neem (Azadirachta indica A. Juss) (Doctoral dissertation). University of Madras, Chennai.
  • Rathaur, P., Ramteke, P., Raja, W., and John, A. (2012). Isolotion and characterization of nickel and cadmium tolerant plant growth promoting rhizobacteria from rhizosphere of Withania somnifera. International Journal of Pharmaceutical Sciences and Research. 6(18). 253-261
  • Saharan, B. S., & Nehra, V. (2011). Plant growth promoting rhizobacteria: A critical review. Life Sciences and Medicine Research, 21(1), 30.
  • Sekar, S., & Kandavel, D. (2010). Interaction of plant growth promoting rhizobacteria (PGPR) and endophytes with medicinal plants–New avenues for phytochemicals. Journal of Phytology, 2(7), 91–100. Shoresh, M., Harman, G. E., & Mastouri, F. (2010). Induced systemic resistance and plant responses to fungal biocontrol agents. Annual Review of Phytopathology, 48, 21–43.
  • Silva, T. R., de Araujo, F. F., & de Sá, M. E. (2012). Influence of plant growth-promoting bacteria on maize productivity under field conditions. Revista Ceres, 59(6), 765–771.
  • Stojanovic, G., Dordevic, A., & Smelcerovic, A. (2013). Do other Hypericum species have medical potential as St. John's wort (Hypericum perforatum)?. Current Medicinal Chemistry, 20(18), 2273–2295.
  • Tsavkelova, E. A., Klimova, S. Y., Cherdyntseva, T. A., & Netrusov, A. I. (2007). Microbial producers of plant growth stimulators and their practical use: A review. Applied Biochemistry and Microbiology, 43(2), 117–126.
  • Van Loon, L. C., Bakker, P. A. H. M., & Pieterse, C. M. J. (1998). Systemic resistance induced by rhizosphere bacteria. Annual Review of Phytopathology, 36, 453–483.
  • Viveros Martinez, O., Jorquera, M. A., Crowley, D. E., Gajardo, G., & Mora, M. L. (2011). Mechanisms and practical considerations involved in plant growth promotion by rhizobacteria. Journal of Soil Science and Plant Nutrition, 10(3), 293–319.
  • Widisuputri, D. I., Wulandari, R. A., Fitriani, N., Ningsih, R., & Amalia, R. (2021). Isolation and characterization of endophytic fungi from local rice plant and their potential as plant growth promoters. Biodiversitas Journal of Biological Diversity, 22(1), 216–222.
  • York, L. M., Carminati, A., Mooney, S. J., Ritz, K., & Bennett, M. J. (2016). The holistic rhizosphere: Integrating zones, processes, and semantics in the soil influenced by roots. Journal of Experimental Botany, 67(12), 3629–3643.

Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi

Year 2025, Volume: 15 Issue: 4, 1256 - 1267
https://doi.org/10.21597/jist.1748680

Abstract

Bitki büyümesini teşvik eden funguslar (PGPF), konukçu bitkilere çeşitli fizyolojik faydalar sağlayan, patojenik olmayan mikroorganizmalardır ve sürdürülebilir tarım uygulamalarında önemli bir rol oynamaktadır. Artan bitkisel üretim talebini çevreye zarar vermeden karşılamak amacıyla PGPF’lerin kullanımı, çevre dostu ve etkili bir strateji olarak değerlendirilmektedir. Bu çalışmada, Hypericum perforatum (Sarı Kantaron) bitkisinden izole edilen endofitik fungusların bitki büyümesini destekleyici potansiyelleri; siderofor üretimi, indol-3-asetik asit (IAA) üretimi, fosfat çözünürlüğü ve ACC deaminaz aktivitesi parametreleri üzerinden incelenmiştir Bunun yanı sıra, bu izolatların patojenik Rhizoctonia solani, Aspergillus fumigatus, Candida albicans, Staphylococcus aureus ve Klebsiella pneumoniae gibi mikroorganizmalara karşı antimikrobiyal aktiviteleri değerlendirilmiştir. Bulgulara göre, F3 izolatı hem yüksek siderofor ve IAA üretimi hem de yüksek antimikrobiyal aktiviteleri ile öne çıkmıştır. ACC deaminaz aktivitesinde F16 ve F7, fosfat çözünürlüğünde ise F9, F21 ve F22 izolatları pozitif sonuç vermiştir. F3, F7 ve F5 izolatları çeşitli patojenlere karşı güçlü inhibisyon gösterirken, özellikle F3 izolatı tüm parametrelerde dikkat çekici performans sergilemiştir. Ayrıca, F9 ve F10 izolatları da büyümeyi teşvik edici özellikleri ile öne çıkmıştır. Bu sonuçlar, bazı endofitik fungus izolatlarının biyogübre adayı olarak kullanılabileceğini ve sürdürülebilir tarımda değerlendirilebileceğini ortaya koymaktadır.

References

  • Angın H, Dadaşoğlu E, 2022. PGPR İzolatlarının Bazı Fasulye Genotiplerinde Bitki Gelişimi Üzerine Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 12(4): 2495- 2505.
  • Antoun, H., & Prévost, D. (2005). Ecology of plant growth promoting rhizobacteria. In Z. A. Siddiqui (Ed.), PGPR: Biocontrol and biofertilization (pp. 1–38). Springer.
  • Barriuso, J., Ramos Solano, B., Lucas, J. A., Lobo, A. P., García-Villaraco, A., & Gutiérrez Mañero, F. J. (2008). Ecology, genetic diversity and screening strategies of plant growth promoting rhizobacteria (PGPR). In Plant-bacteria interactions: Strategies and techniques to promote plant growth (pp. 1–17).
  • Bayman, P., & Porras-Alfaro, A. (2011). Hidden fungi, emergent properties: Endophytes and microbiomes. Annual Review of Phytopathology, 49, 291–315. https://doi.org/10.1146/annurev-phyto-080508-081831
  • Bektas, Ġ., Seyrekoglu, F., Kusek, M., & Ceyhan BaĢaran, C. (2023). Determination of Antifungal Activity of Leaf Extracts from Hypericum ssp. Against Plant Pathogenic Fungi Fusarium oxysporum and Alternaria alternata. Journal of the Institute of Science and Technology, 13(4), 2364-2372.
  • Beram, R. C., Beram, A., & Doğmuş Lehtijarvi, H. T. (2016). Fungal endofitler ve etkileşimleri. MAKÜ Fen Bilimleri Enstitüsü Dergisi, 7(2), 161–166.
  • Çebi Kılıçoğlu, M., Baialieva, G., & Özkoç, İ. (2024). Molecular characterization of fungal endophytes associated with Hypericum perforatum in Samsun, Turkey. World News of Natural Sciences, 54, 58–69.
  • Compant, S., Reiter, B., Sessitsch, A., Nowak, J., Clément, C., & Barka, E. A. (2005). Endophytic colonization of Vitis vinifera L. by plant growth-promoting bacterium Burkholderia sp. strain PsJN. Applied and Environmental Microbiology, 71(3), 1685–1693.
  • Denef, K., Bubenheim, H., Lenhart, K., Vermeulen, J., Van Cleemput, O., Boeckx, P., & Müller, C. (2007). Community shifts and carbon translocation within metabolically-active rhizosphere microorganisms in grasslands under elevated CO₂. Biogeosciences, 4(5), 769–779.
  • Elsharkawy, M. M., & El-Khateeb, A. Y. (2019). Induction of resistance against Rhizoctonia solani causing root rot and damping-off in common bean by Bacillus subtilis and Trichoderma harzianum. Plant Pathology Journal, 35(2), 124–135.
  • Fürnkranz, M., Müller, H., & Berg, G. (2009). Characterization of plant growth promoting bacteria from crops in Bolivia. Journal of Plant Diseases and Protection, 116(4), 149–155.
  • Gahan, J., & Schmalenberger, A. (2014). The role of bacteria and mycorrhiza in plant nutrient cycling. In D. Gupta & J. Uniyal (Eds.), Biotechnology of biofertilizers (pp. 1–16). Springer.
  • Garcia, K. (2012). CAS agar based siderophore detection and its application. Methods in Molecular Biology, 954, 17–28.
  • Goswami, D., Thakker, J. N., & Dhandhukia, P. C. (2016). Portraying mechanics of plant growth promoting rhizobacteria (PGPR): A review. Cogent Food & Agriculture, 2(1), 1127500. https://doi.org/10.1080/23311932.2015.1127500
  • Gupta, S. S., Parihar, N. K., Ahirwar, S. K., Snehi, V., & Singh, V. (2015). Plant growth promoting rhizobacteria (PGPR): Current and future prospects for development of sustainable agriculture. Journal of Microbial & Biochemical Technology, 7(2), 96–102.
  • Hossain, M. M., Sultana, F., & Islam, S. (2017). Plant growth-promoting fungi (PGPF): Phytostimulation and induced systemic resistance. In D. P. Singh et al. (Eds.), Plant-microbe interactions in agro-ecological perspectives: Volume 2: Microbial interactions and agro-ecological impacts (pp. 135–191). Springer.
  • Karaman, A., Taşar, N., Yazdıç, F.C. ve Gedik, O. (2023). Hypericum L. Cinsine Ait Bazı Türlerin Uçucu Yağ Bileşenlerinin Antimikrobiyal Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 13(1), 73-79.
  • Khosa, R. L., & Bhatia, N. (1982). Antifungal effect of Hypericum perforatum. Indian Journal of Pharmacology, 14(3), 241–243.
  • Kaur, S., Reddy, M. S., & Kumar, V. (2016). Endophytic fungi: As efficient tools for plant growth promotion and sustainable agriculture. In V. Kumar & M. K. Dubey (Eds.), Plant growth-promoting microbes for sustainable agricultural production (pp. 119–135). Springer.
  • Kaymak, H. C. (2010). Bitki büyümesini teşvik eden mikroorganizmalar (PGPM) ve tarımda kullanımı. Ankara Üniversitesi Ziraat Fakültesi Dergisi, 16(2), 101–115.
  • Lynch, J. P. (2019). Root phenotypes for improved nutrient capture: An underexploited opportunity for global agriculture. New Phytologist, 223(2), 548–564. https://doi.org/10.1111/nph.15738
  • Martinez-Viveros, O., Jorquera, M. A., Crowley, D. E., Gajardo, G., & Mora, M. L. (2010). Mechanisms and practical considerations involved in plant growth promotion by rhizobacteria. Journal of Soil Science and Plant Nutrition, 10(3), 293–319.
  • Mendes, R., Garbeva, P., & Raaijmakers, J. M. (2013). The rhizosphere microbiome: Significance of plant beneficial, plant pathogenic, and human pathogenic microorganisms. FEMS Microbiology Reviews, 37(5), 634–663. https://doi.org/10.1111/1574-6976.12028
  • Murashige, T., & Skoog, F. (1962). A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiologia plantarum, 15(3).
  • Mustafa, L. B., Al-Bayati, A. I. N., & Özkoç, I. (2024a). Salt-tolerant endophytic Pseudomonas putida isolated from Aronia prunifolia root with plant growth-promoting potential. World News of Natural Sciences, 53, 212-222.
  • Mustafa, L., Al-bayati, A. I. N., Albayati, D., & Özkoç, İ. (2024b). Biogenic Synthesis of Silver and Iron Oxide Nanoparticles Using Aronia prunifolia Leaf Extract and Its Inhibitory Action Against Pathogenic Fungi. Karadeniz Fen Bilimleri Dergisi, 14(2), 589-604.
  • Özimek, E. (2018). The role of plant growth-promoting rhizobacteria (PGPR) in alleviating abiotic stresses in plants. Acta Agrobotanica, 71(4), 1–15.
  • Özkoç, I., Bilgi, M., Gurkanli, C. T., ve Mustafa, L. B. (2023). Bazı Orkide Türlerinde Ekim Öncesi Tohum Uygulamaları ve Bu Uygulamaların Tohum Çimlenme ve Gelişmesine Olan Etkisi. Iğdır Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 13(4), 2476-2484.
  • Patil, S. V., Jadhav, J. P., & Ghosh, J. S. (2016). Endophytic fungi: A new source of bioactive compounds. Journal of Current Microbiology and Applied Sciences, 5(4), 491–502.
  • Porras-Alfaro, A., & Bayman, P. (2011). Hidden fungi, emergent properties: Endophytes and microbiomes. Annual Review of Phytopathology, 49, 291–315.
  • Rajagopal, K. (1998). Biology and ecology of endophytic fungi from tropical trees with special reference to neem (Azadirachta indica A. Juss) (Doctoral dissertation). University of Madras, Chennai.
  • Rathaur, P., Ramteke, P., Raja, W., and John, A. (2012). Isolotion and characterization of nickel and cadmium tolerant plant growth promoting rhizobacteria from rhizosphere of Withania somnifera. International Journal of Pharmaceutical Sciences and Research. 6(18). 253-261
  • Saharan, B. S., & Nehra, V. (2011). Plant growth promoting rhizobacteria: A critical review. Life Sciences and Medicine Research, 21(1), 30.
  • Sekar, S., & Kandavel, D. (2010). Interaction of plant growth promoting rhizobacteria (PGPR) and endophytes with medicinal plants–New avenues for phytochemicals. Journal of Phytology, 2(7), 91–100. Shoresh, M., Harman, G. E., & Mastouri, F. (2010). Induced systemic resistance and plant responses to fungal biocontrol agents. Annual Review of Phytopathology, 48, 21–43.
  • Silva, T. R., de Araujo, F. F., & de Sá, M. E. (2012). Influence of plant growth-promoting bacteria on maize productivity under field conditions. Revista Ceres, 59(6), 765–771.
  • Stojanovic, G., Dordevic, A., & Smelcerovic, A. (2013). Do other Hypericum species have medical potential as St. John's wort (Hypericum perforatum)?. Current Medicinal Chemistry, 20(18), 2273–2295.
  • Tsavkelova, E. A., Klimova, S. Y., Cherdyntseva, T. A., & Netrusov, A. I. (2007). Microbial producers of plant growth stimulators and their practical use: A review. Applied Biochemistry and Microbiology, 43(2), 117–126.
  • Van Loon, L. C., Bakker, P. A. H. M., & Pieterse, C. M. J. (1998). Systemic resistance induced by rhizosphere bacteria. Annual Review of Phytopathology, 36, 453–483.
  • Viveros Martinez, O., Jorquera, M. A., Crowley, D. E., Gajardo, G., & Mora, M. L. (2011). Mechanisms and practical considerations involved in plant growth promotion by rhizobacteria. Journal of Soil Science and Plant Nutrition, 10(3), 293–319.
  • Widisuputri, D. I., Wulandari, R. A., Fitriani, N., Ningsih, R., & Amalia, R. (2021). Isolation and characterization of endophytic fungi from local rice plant and their potential as plant growth promoters. Biodiversitas Journal of Biological Diversity, 22(1), 216–222.
  • York, L. M., Carminati, A., Mooney, S. J., Ritz, K., & Bennett, M. J. (2016). The holistic rhizosphere: Integrating zones, processes, and semantics in the soil influenced by roots. Journal of Experimental Botany, 67(12), 3629–3643.
There are 41 citations in total.

Details

Primary Language Turkish
Subjects Bacteriology, Mycology
Journal Section Research Article
Authors

Khaoula Charih 0009-0005-5953-1281

Vildan Akın Mutlu 0000-0002-6330-105X

Melike Çebi Kılıçoğlu 0000-0001-6263-4111

İbrahim Özkoç 0000-0001-8179-0961

Early Pub Date November 27, 2025
Publication Date November 27, 2025
Submission Date July 22, 2025
Acceptance Date September 8, 2025
Published in Issue Year 2025 Volume: 15 Issue: 4

Cite

APA Charih, K., Akın Mutlu, V., Çebi Kılıçoğlu, M., Özkoç, İ. (2025). Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi. Journal of the Institute of Science and Technology, 15(4), 1256-1267. https://doi.org/10.21597/jist.1748680
AMA Charih K, Akın Mutlu V, Çebi Kılıçoğlu M, Özkoç İ. Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi. J. Inst. Sci. and Tech. November 2025;15(4):1256-1267. doi:10.21597/jist.1748680
Chicago Charih, Khaoula, Vildan Akın Mutlu, Melike Çebi Kılıçoğlu, and İbrahim Özkoç. “Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi”. Journal of the Institute of Science and Technology 15, no. 4 (November 2025): 1256-67. https://doi.org/10.21597/jist.1748680.
EndNote Charih K, Akın Mutlu V, Çebi Kılıçoğlu M, Özkoç İ (November 1, 2025) Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi. Journal of the Institute of Science and Technology 15 4 1256–1267.
IEEE K. Charih, V. Akın Mutlu, M. Çebi Kılıçoğlu, and İ. Özkoç, “Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi”, J. Inst. Sci. and Tech., vol. 15, no. 4, pp. 1256–1267, 2025, doi: 10.21597/jist.1748680.
ISNAD Charih, Khaoula et al. “Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi”. Journal of the Institute of Science and Technology 15/4 (November2025), 1256-1267. https://doi.org/10.21597/jist.1748680.
JAMA Charih K, Akın Mutlu V, Çebi Kılıçoğlu M, Özkoç İ. Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi. J. Inst. Sci. and Tech. 2025;15:1256–1267.
MLA Charih, Khaoula et al. “Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi”. Journal of the Institute of Science and Technology, vol. 15, no. 4, 2025, pp. 1256-67, doi:10.21597/jist.1748680.
Vancouver Charih K, Akın Mutlu V, Çebi Kılıçoğlu M, Özkoç İ. Hypericum Perforatum’dan İzole Edilen Endofitik Fungusların Bitki Büyümesini Artırıcı Özelliklerinin Belirlenmesi. J. Inst. Sci. and Tech. 2025;15(4):1256-67.