ISOLATION AND CHARACTERIZATION OF PHOSPHATE-SOLUBILIZING FUNGI FROM SALINE REGION FOR INCREASED CROP PRODUCTIVITY
DOI:
https://doi.org/10.5281/zenodo.15631490Keywords:
Avicennia Marina, Biofertilizer, Phosphate-Solubilizing Fungi (PSF), Phylogenetic Analysis, Saline Soil, Sustainable AgricultureAbstract
The study designed to isolate and characterize PSF from the saline rhizosphere of Avicennia marina, which is dominant mangrove species, to evaluate their potential as biofertilizer in saline soil of Kutch region. Eight fungal isolates from mangrove soils in Kandla, Gujarat, were identified as Alternaria alternata, Aspergillus fumigatus, Aspergillus versicolor, and Penicillium oxalicum species using 18S rRNA gene sequencing. Phosphate solubilization was measured using NBRIP and PVK medium. The development of plant growth assets particularly siderophore and indole acetic acid synthesis were investigated. The quantitative study of A. fumigatus (PSF-4) revealed the highest IAA synthesis (59.0 µg/ml), the strongest siderophore activity, and the highest phosphate solubilization ability (700 µg/ml in NBRIP and 680 µg/ml in PVK). Furthermore, A. versicolour (PSF-6) demonstrated considerable potential due to its growth-promoting and persistent solubilization characteristics. PSF-4 and PSF-6 exhibited the highest levels of plant growth-promoting characteristic which includes siderophore synthesis and indole-3-acetic acid (IAA), suggesting their dual activity. This result confirmed that native fungal isolates from soils related with mangroves have the potential to be effective bioinoculants for sustainable agriculture, especially in saline conditions.
References
I. Khare, N., Khare, P., & Singh, S. (2025). Molecular and Physiological Concepts: Macronutrients in Crop Plant Growth and Development. In Agricultural Crop Improvement (pp. 148-164). CRC Press.
II. Muindi, E. D. M. (2019). Understanding soil phosphorus. International Journal of Plant & Soil Science, 31(2), 1-18.
III. Zhang, M., Li, C., Li, Y. C., & Harris, W. G. (2014). Phosphate minerals and solubility in native and agricultural calcareous soils. Geoderma, 232, 164-171.
IV. Tirado, R., & Allsopp, M. (2012). Phosphorus in agriculture: problems and solutions. Greenpeace Research Laboratories Technical Report (Review), 2.
V. Prabhu, N., Borkar, S., & Garg, S. (2019). Phosphate solubilization by microorganisms: overview, mechanisms, applications and advances. Advances in biological science research, 161-176.
VI. Rawat, P., Das, S., Shankhdhar, D., & Shankhdhar, S. C. (2021). Phosphate-solubilizing microorganisms: mechanism and their role in phosphate solubilization and uptake. Journal of Soil Science and Plant Nutrition, 21(1), 49-68.
VII. Kaur, C., Selvakumar, G., & Ganeshamurthy, A. N. (2016). Organic acids in the rhizosphere: their role in phosphate dissolution. Microbial inoculants in sustainable agricultural productivity: Vol. 2: Functional applications, 165-177.
VIII. Tian, J., Ge, F., Zhang, D., Deng, S., & Liu, X. (2021). Roles of phosphate solubilizing microorganisms from managing soil phosphorus deficiency to mediating biogeochemical P cycle. Biology, 10(2), 158.
IX. Mehta, P., Sharma, R., Putatunda, C., & Walia, A. (2019). Endophytic fungi: role in phosphate solubilization. Advances in endophytic fungal research: present status and future challenges, 183-209.
X. Wendimu, A., Yoseph, T., & Ayalew, T. (2023). Ditching phosphatic fertilizers for phosphate-solubilizing biofertilizers: a step towards sustainable agriculture and environmental health. Sustainability, 15(2), 1713.
XI. Hossain, M. M., Sultana, F., & Islam, S. (2017). Plant growth-promoting fungi (PGPF): phytostimulation and induced systemic resistance. Plant-microbe interactions in agro-ecological perspectives: Volume 2: Microbial interactions and agro-ecological impacts, 135-191.
XII. Al-Ani, L. K. T., Aguilar-Marcelino, L., Becerra, A. G., & Salazar-Vidal, V. E. (2021). Fe-chelating compounds producing fungal communities and their applications. Recent Trends in Mycological Research: Volume 1: Agricultural and Medical Perspective, 135-157.
XIII. Iftikhar, A., Farooq, R., Akhtar, M., Khalid, H., Hussain, N., Ali, Q., ul Malook, S. & Ali, D. (2024). Ecological and sustainable implications of phosphorous-solubilizing microorganisms in soil. Discover Applied Sciences, 6(2), 33.
XIV. Vassileva, M., Mendes, G. D. O., Deriu, M. A., Benedetto, G. D., Flor-Peregrin, E., Mocali, S., Martos V & Vassilev, N. (2022). Fungi, P-solubilization, and plant nutrition. Microorganisms, 10(9), 1716.
XV. Shrivastava, M., Srivastava, P. C., & D’souza, S. F. (2018). Phosphate-solubilizing microbes: diversity and phosphates solubilization mechanism. Role of Rhizospheric Microbes in Soil: Volume 2: Nutrient Management and Crop Improvement, 137-165.
XVI. Nagarajan, T., Veilumuthu, P., Srinithan, T., & Christopher, J. G. (2025). An Introduction to Mangrove Ecosystem and Their Associated Microorganisms. Mangrove Microbiome: Diversity and Bioprospecting, 3-18.
XVII. Fu, S. F., Balasubramanian, V. K., Chen, C. L., Tran, T. T., Muthuramalingam, J. B., & Chou, J. Y. (2024). The phosphate-solubilising fungi in sustainable agriculture: unleashing the potential of fungal biofertilisers for plant growth. Folia Microbiologica, 69(4), 697-712.
XVIII. Pahalvi, H. N., Rafiya, L., Rashid, S., Nisar, B., & Kamili, A. N. (2021). Chemical fertilizers and their impact on soil health. Microbiota and Biofertilizers, Vol 2: Ecofriendly tools for reclamation of degraded soil environs, 1-20.
XIX. Javeed, H. M. R., Iqbal, N., Ali, M., & Masood, N. (2021). Agriculture Contribution toward Global Warming. Climate Change and Plants: Biodiversity, Growth and Interactions; CRC Press: Boca Raton, FL, USA.
XX. Abawari, R. A., Tuji, F. A., & Yadete, D. M. (2020). Phosphate solubilizing bio-fertilizers and their role in bio-available P nutrient: an overview. Int. J. Appl. Agric. Sci, 6(6), 162.
XXI. Ibrahim, M., Iqbal, M., Tang, Y. T., Khan, S., Guan, D. X., & Li, G. (2022). Phosphorus mobilization in plant–soil environments and inspired strategies for managing phosphorus: A review. Agronomy, 12(10), 2539.
XXII. Pang, F., Li, Q., Solanki, M. K., Wang, Z., Xing, Y. X., & Dong, D. F. (2024). Soil phosphorus transformation and plant uptake driven by phosphate-solubilizing microorganisms. Frontiers in Microbiology, 15, 1383813.
XXIII. Wei, X., Xie, B., Wan, C., Song, R., Zhong, W., Xin, S., & Song, K. (2024). Enhancing soil health and plant growth through microbial fertilizers: Mechanisms, benefits, and sustainable agricultural practices. Agronomy, 14(3), 609.
XXIV. Ahamed, F., & Murugan, M. (2019). Isolation and characterization of marine endophytic fungi from seaweeds, and bioactivity of their crude extracts. J. of Pure and Applied Microbiology, 13(3), 1451-1460.
XXV. Romao-Dumaresq, A. S., Dourado, M. N., Fávaro, L. C. D. L., Mendes, R., Ferreira, A., & Araujo, W. L. (2016). Diversity of cultivated fungi associated with conventional and transgenic sugarcane and the interaction between endophytic Trichoderma virens and the host plant. PLoS One, 11(7), e0158974.
XXVI. Abawari, R. A., Tuji, F. A., & Yadete, D. M. (2021). Multi traits of phosphate solublizing bacterial and fungal isolates and evaluation of their potential as biofertilizer agent for coffee production. International Journal of Applied Agricultural Sciences, 7(1), 1-15.
XXVII. Nandaniya, J. (2023). Study of Microbial Phosphate Solubilizers and their Potential Usage in Sustainable Agricultural Practices (Doctoral dissertation).
XXVIII. Kokaeva, L. Y., Yarmeeva, M. M., Kokaeva, Z. G., Chudinova, E. M., Balabko, P. N., & Elansky, S. N. (2022). Phylogenetic study of Alternaria potato and tomato pathogens in Russia. Diversity, 14(8), 685.
XXIX. Krimitzas, A., Pyrri, I., Kouvelis, V. N., Kapsanaki-Gotsi, E., & Typas, M. A. (2013). A phylogenetic analysis of Greek isolates of Aspergillus species based on morphology and nuclear and mitochondrial gene sequences. BioMed research international, 2013(1), 260395.
XXX. Davolos, D., Pietrangeli, B., Persiani, A. M., & Maggi, O. (2012). Penicillium simile sp. nov. revealed by morphological and phylogenetic analysis. International journal of systematic and evolutionary microbiology, 62(2), 451-458.
XXXI. Elias, F., Woyessa, D., & Muleta, D. (2016). Phosphate solubilization potential of rhizosphere fungi isolated from plants in Jimma Zone, Southwest Ethiopia. International Journal of Microbiology, 2016(1), 5472601.
XXXII. Moropana, T. J., Jansen Van Rensburg, E. L., Makulana, L., & Phasha, N. N. (2024). Screening Aspergillus flavus, Talaromyces purpureogenus, and Trichoderma koningiopsis for Plant-Growth-Promoting Traits: A Study on Phosphate Solubilization, IAA Production, and Siderophore Synthesis. Journal of Fungi, 10(12), 811.
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