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The Effect of Plant Growth-Promoting Fungal Species on Tef [Eragrostis tef (Zucc.) Trotter] Growth, Yield, and Grain Nutrient Uptake
Corresponding Author(s) : Zerihun Tsegaye
Sustainability Science and Resources,
Vol. 8 (2025): Sustainable Science and Resources
Abstract
This study investigates the impact of plant growth-promoting fungi (PGPF) on the growth, yield, and nutrient uptake of tef (Eragrostis tef). We evaluated the effects of three fungal species—Trichoderma harzianum Rifai BGB, Penicillium italicum Wehmer, and Aspergillus v. Tiegham BGB on various growth and yield parameters, including plant height, panicle size, shoot and root dry weight, and grain yield per plant. Additionally, we assessed their influence on the nutrient content of tef grains, specifically nitrogen (N), phosphorus (P), potassium (K), magnesium (Mg), calcium (Ca), zinc (Zn), and iron (Fe).
Results showed that Trichoderma harzianum Rifai BGB and Penicillium italicum Wehmer significantly (P<0.001) enhanced plant height, panicle size, and the number of fertile tillers compared to the control and Aspergillus. Both fungi also significantly increased shoot and root dry weight, as well as grain yield per plant. Regarding nutrient uptake, Trichoderma and Penicillium markedly improved nitrogen, phosphorus, magnesium, calcium, zinc, and iron content in the grains. Penicillium showed notable improvements in these nutrients compared to the control and Aspergillus, while Trichoderma was superior in nitrogen content.
Our findings suggest that Trichoderma harzianum Rifai BGB and Penicillium italicum Wehmer are effective in promoting tef growth, enhancing yield, and improving grain nutritional quality. These results indicate the potential of using these fungi as biofertilizers to optimize tef cultivation and address nutrient deficiencies in tef grains
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- Abraha Misan Tesfay, Hussein Shimelis, Laing, M. and Kibebew Assefa. (2017). Achievements and gaps in tef productivity improvement practices in the marginal areas of Northern Ethiopia: implications for future research directions. I. J. A. S, 15 (1): (2017): 42-53.
- Arunrat, N., Kongsurakan, P., Sereenonchai, S., & Hatano, R. (2020). Soil organic carbon in sandy paddy fields of Northeast Thailand: A review. Agronomy, 10(8), 1061.
- Central Statistics Agency (2019).
- Agricultural Sample Survey: Report on Area and Production of Major Crops, Federal Democratic Republic of Ethiopia
- Chala G, Kassa S, Tadele T, Assefa K, Teshome H, Agegnehu G (2022). Yield response of tef (Eragrostis tef) to nitrogen, phosphorus, potassium and sulphur under balanced fertilisation on Vertisols in different agroecological zones of Ethiopia. Experimental Agriculture. 58: e12.
- Devi, R., Kaur, T., Kour, D., Rana, K. L., Yadav, A., & Yadav, A. N. (2020). Beneficial fungal communities from different habitats and their roles in plant growth promotion and soil
- health. Microbial Biosystems, 5(1), 21-47.
- Doni, F., Isahak, A., Che Mohd Zain, C.R. et al (2014). Physiological and growth response of
- rice plants (Oryza sativa L.) to Trichoderma spp. Inoculants. AMB Expr 4, 45 Doris-Piccinin, M.S.D. (2010). More about Ethiopian food: Teff development of nutrition and
- food science, University of Washington, America.12:1-8
- Dukare, A.S.; Singh, R.K.; Jangra, R.K.; Bhushan, B. (2022). Non-Fungicide-Based Promising Technologies for Managing Post-Production Penicillium-Induced Spoilage in Horticultural Commodities: A Comprehensive Review. Food Rev. Int. 38, 227–267.
- Gebremariam Mekonnen, Martin, Z and Thomas, B. (2014). Teff (Eragrostis tef) as a raw material for malting, brewing and manufacturing of gluten-free foods and beverages: a review. Journal of Food Science and Technology, 51 (11): 2881-2895.
- Geren, H., Kavut, Y. T., & Kır, B. (2019). Effect of different row spacings on the yield and
- some yield characteristics of teff (Eragrostis teff) crop grown under Söke ecological
- conditions.
- Giday, O., Gibrekidan, H., & Berhe, T. (2014). Response of teff (Eragrostis tef) to different
- rates of slow release and conventional urea fertilisers in Vertisols of Southern Tigray,
- Ethiopia. Advances in Plants & Agriculture Research, 1(5), 1-8.
- Hauser, P. C. (2016). Determination of alkali ions in biological and environmental samples.
- The Alkali Metal Ions: Their Role for Life, 11-25.
- Havlin JL, Beaton JD, Tisdale SL, Nelson WL (1999). Soil fertility and fertilisers. 6th ed.
- Prentice Hall. New Jersey. 499 p.
- 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.
- Illescas M, Morán-Diez ME, Martínez de Alba ÁE, Hermosa R, Monte E. (2022). Effect of
- Trichoderma asperellum on Wheat Plants' Biochemical and Molecular Responses, and
- Yield under Different Water Stress Conditions. Int J Mol Sci. 17;23(12):6782.
- Imran, M., Abulreesh, H.H., Monjed, M.K. et al 2021). Multifarious functional traits of free- living rhizospheric fungi, with special reference to Aspergillus spp. Isolated from North
- Indian soil, and their inoculation effect on plant growth. Ann Microbiol 71, 31
- Kaleab Baye. (2014). Synopsis: Teff: nutrient composition and health benefits. Ethiopia
- Strategy Support Program, 34: 1-17.
- Kebede Haile, Johnson, R.C. and Ferris, D.M. (1989). Photosynthetic response of Eragrostis
- tef to temperature [carbon isotope composition, C4 photosynthesis]. Physiologia Plantarum, 77(2):262-266.
- Kibebew Assefa, Solomon Chanyalew and Girma Metaferia (2013a). Conventional and Molecular Teff Breeding. In Achievements and Prospects of Teff Improvement, edited by Kibebew Assefa, Solomon Chanyalew, and Zerihun Tadele, 33–51. Proceedings of
- the Second International Teff Workshop, Debre Zeit, Ethiopia.
- Koza, N.; Adedayo, A.; Babalola, O.; Kappo, A. (2022). Microorganisms in Plant Growth and
- Development: Roles in Abiotic Stress Tolerance and Secondary Metabolites Secretion.
- Microorganisms, 10, 1528.
- Mandal, P. and Tiru, Z. (2022). Soil application of plant growth-promoting fungi for sustainable
- agriculture in the new decade. In Plant Stress: Challenges and Management in the New
- Decade (pp. 321-330). Cham: Springer International Publishing.
- Miyazawa, A., Fujiyoshi, Y., Stowell, M., and Unwin, N. (1999). Nicotinic acetylcholine receptor at 4.6 Å resolution: Transverse tunnels in the channel. J. Mol. Biol. 288, 765–
- Ravindran, V., Ravindran, G., & Sivalogan, S. (1994). Total and phytate phosphorus contents
- of various foods and feedstuffs of plant origin. Food Chemistry, 50(2), 133-136. Recena, R., Torrent, J., del Campillo, M. C., & Delgado, A. (2015). Accuracy of Olsen P to assess plant P uptake in relation to soil properties and P forms. Agronomy for
- sustainable development, 35, 1571-1579.
- Saba HDV, Manisha M, Prashant KS, Farham H, Tauseff A (2012) Trichoderma: a promising
- plant growth stimulator and Biocontrol agent. Mycosphere.
- Seifu Ketema (1993). Tef [Eragostis tef: Breeding: Genetic resource, Agronomy utilisation and
- role in Ethiopian agriculture. Institute of Agricultural Research, Addis Ababa, pp.80 Shukla N, Awasthi RP, Rawat L, Kumar J (2012). Biochemical and physiological responses of rice ( Oryza sativa L.) as influenced by Trichoderma harzianum under drought stress.
- Plant Physiol Biochem 2012, 54: 78–88.
- Silletti S., Di Stasio E., Van Oosten M.J., Ventorino V., Pepe O., Napolitano M., Marra R.,
- Woo S.L., Cirillo V., Maggio A. (2021). Biostimulant activity of Azotobacter chroococcum and Trichoderma harzianum in durum wheat under water and nitrogen deficiency. Agronomy. 11:380.
- Vavilov, I. (1951). The Origin, Variation, Immunity and Breeding of Cultivated Plants. Translate from Russian. Ronald Press Co., New York, pp.70.
- Wakelin SA, Gupta VV, Harvey PR, Ryder MH (2007). The effect of Penicillium fungi on plant growth and phosphorus mobilisation in neutral to alkaline soils from southern Australia. Can J Microbiol. 53(1):106-15. doi: 10.1139/w06-109. PMID: 17496956.
- Webb, E., Amarasiriwardena, D., Tauch, S., Green, E. F., Jones, J., & Goodman, A. H. (2005). Inductively coupled plasma-mass (ICP-MS) and atomic emission spectrometry (ICP-AES): versatile analytical techniques to identify the archived elemental information in
- human teeth. Microchemical Journal, 81(2), 201-208.
- Yapa, N., Lakmali, D., Zoysa, D., Silva, K. S., Manawadu, C., Herath, B. M. and
- Bamunuarachchige, C. (2022). Biofertilisers: An Emerging Trend in Agricultural Sustainability.
References
Abraha Misan Tesfay, Hussein Shimelis, Laing, M. and Kibebew Assefa. (2017). Achievements and gaps in tef productivity improvement practices in the marginal areas of Northern Ethiopia: implications for future research directions. I. J. A. S, 15 (1): (2017): 42-53.
Arunrat, N., Kongsurakan, P., Sereenonchai, S., & Hatano, R. (2020). Soil organic carbon in sandy paddy fields of Northeast Thailand: A review. Agronomy, 10(8), 1061.
Central Statistics Agency (2019).
Agricultural Sample Survey: Report on Area and Production of Major Crops, Federal Democratic Republic of Ethiopia
Chala G, Kassa S, Tadele T, Assefa K, Teshome H, Agegnehu G (2022). Yield response of tef (Eragrostis tef) to nitrogen, phosphorus, potassium and sulphur under balanced fertilisation on Vertisols in different agroecological zones of Ethiopia. Experimental Agriculture. 58: e12.
Devi, R., Kaur, T., Kour, D., Rana, K. L., Yadav, A., & Yadav, A. N. (2020). Beneficial fungal communities from different habitats and their roles in plant growth promotion and soil
health. Microbial Biosystems, 5(1), 21-47.
Doni, F., Isahak, A., Che Mohd Zain, C.R. et al (2014). Physiological and growth response of
rice plants (Oryza sativa L.) to Trichoderma spp. Inoculants. AMB Expr 4, 45 Doris-Piccinin, M.S.D. (2010). More about Ethiopian food: Teff development of nutrition and
food science, University of Washington, America.12:1-8
Dukare, A.S.; Singh, R.K.; Jangra, R.K.; Bhushan, B. (2022). Non-Fungicide-Based Promising Technologies for Managing Post-Production Penicillium-Induced Spoilage in Horticultural Commodities: A Comprehensive Review. Food Rev. Int. 38, 227–267.
Gebremariam Mekonnen, Martin, Z and Thomas, B. (2014). Teff (Eragrostis tef) as a raw material for malting, brewing and manufacturing of gluten-free foods and beverages: a review. Journal of Food Science and Technology, 51 (11): 2881-2895.
Geren, H., Kavut, Y. T., & Kır, B. (2019). Effect of different row spacings on the yield and
some yield characteristics of teff (Eragrostis teff) crop grown under Söke ecological
conditions.
Giday, O., Gibrekidan, H., & Berhe, T. (2014). Response of teff (Eragrostis tef) to different
rates of slow release and conventional urea fertilisers in Vertisols of Southern Tigray,
Ethiopia. Advances in Plants & Agriculture Research, 1(5), 1-8.
Hauser, P. C. (2016). Determination of alkali ions in biological and environmental samples.
The Alkali Metal Ions: Their Role for Life, 11-25.
Havlin JL, Beaton JD, Tisdale SL, Nelson WL (1999). Soil fertility and fertilisers. 6th ed.
Prentice Hall. New Jersey. 499 p.
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.
Illescas M, Morán-Diez ME, Martínez de Alba ÁE, Hermosa R, Monte E. (2022). Effect of
Trichoderma asperellum on Wheat Plants' Biochemical and Molecular Responses, and
Yield under Different Water Stress Conditions. Int J Mol Sci. 17;23(12):6782.
Imran, M., Abulreesh, H.H., Monjed, M.K. et al 2021). Multifarious functional traits of free- living rhizospheric fungi, with special reference to Aspergillus spp. Isolated from North
Indian soil, and their inoculation effect on plant growth. Ann Microbiol 71, 31
Kaleab Baye. (2014). Synopsis: Teff: nutrient composition and health benefits. Ethiopia
Strategy Support Program, 34: 1-17.
Kebede Haile, Johnson, R.C. and Ferris, D.M. (1989). Photosynthetic response of Eragrostis
tef to temperature [carbon isotope composition, C4 photosynthesis]. Physiologia Plantarum, 77(2):262-266.
Kibebew Assefa, Solomon Chanyalew and Girma Metaferia (2013a). Conventional and Molecular Teff Breeding. In Achievements and Prospects of Teff Improvement, edited by Kibebew Assefa, Solomon Chanyalew, and Zerihun Tadele, 33–51. Proceedings of
the Second International Teff Workshop, Debre Zeit, Ethiopia.
Koza, N.; Adedayo, A.; Babalola, O.; Kappo, A. (2022). Microorganisms in Plant Growth and
Development: Roles in Abiotic Stress Tolerance and Secondary Metabolites Secretion.
Microorganisms, 10, 1528.
Mandal, P. and Tiru, Z. (2022). Soil application of plant growth-promoting fungi for sustainable
agriculture in the new decade. In Plant Stress: Challenges and Management in the New
Decade (pp. 321-330). Cham: Springer International Publishing.
Miyazawa, A., Fujiyoshi, Y., Stowell, M., and Unwin, N. (1999). Nicotinic acetylcholine receptor at 4.6 Å resolution: Transverse tunnels in the channel. J. Mol. Biol. 288, 765–
Ravindran, V., Ravindran, G., & Sivalogan, S. (1994). Total and phytate phosphorus contents
of various foods and feedstuffs of plant origin. Food Chemistry, 50(2), 133-136. Recena, R., Torrent, J., del Campillo, M. C., & Delgado, A. (2015). Accuracy of Olsen P to assess plant P uptake in relation to soil properties and P forms. Agronomy for
sustainable development, 35, 1571-1579.
Saba HDV, Manisha M, Prashant KS, Farham H, Tauseff A (2012) Trichoderma: a promising
plant growth stimulator and Biocontrol agent. Mycosphere.
Seifu Ketema (1993). Tef [Eragostis tef: Breeding: Genetic resource, Agronomy utilisation and
role in Ethiopian agriculture. Institute of Agricultural Research, Addis Ababa, pp.80 Shukla N, Awasthi RP, Rawat L, Kumar J (2012). Biochemical and physiological responses of rice ( Oryza sativa L.) as influenced by Trichoderma harzianum under drought stress.
Plant Physiol Biochem 2012, 54: 78–88.
Silletti S., Di Stasio E., Van Oosten M.J., Ventorino V., Pepe O., Napolitano M., Marra R.,
Woo S.L., Cirillo V., Maggio A. (2021). Biostimulant activity of Azotobacter chroococcum and Trichoderma harzianum in durum wheat under water and nitrogen deficiency. Agronomy. 11:380.
Vavilov, I. (1951). The Origin, Variation, Immunity and Breeding of Cultivated Plants. Translate from Russian. Ronald Press Co., New York, pp.70.
Wakelin SA, Gupta VV, Harvey PR, Ryder MH (2007). The effect of Penicillium fungi on plant growth and phosphorus mobilisation in neutral to alkaline soils from southern Australia. Can J Microbiol. 53(1):106-15. doi: 10.1139/w06-109. PMID: 17496956.
Webb, E., Amarasiriwardena, D., Tauch, S., Green, E. F., Jones, J., & Goodman, A. H. (2005). Inductively coupled plasma-mass (ICP-MS) and atomic emission spectrometry (ICP-AES): versatile analytical techniques to identify the archived elemental information in
human teeth. Microchemical Journal, 81(2), 201-208.
Yapa, N., Lakmali, D., Zoysa, D., Silva, K. S., Manawadu, C., Herath, B. M. and
Bamunuarachchige, C. (2022). Biofertilisers: An Emerging Trend in Agricultural Sustainability.