Assessed Biochar and Moringa oleifera extracts on barley growth and quality in a salty environment
DOI:
https://doi.org/10.65405/anjppm60الكلمات المفتاحية:
Barley (Hordeum vulgare L.), biochar, Moringa oleifera extracts, vegetative growth, yield and yield components, chemical compositionالملخص
The field experiment took place at Institute Farm - Tarhuna - Libya, in the winter of 2022–2023 and 2023–2024. The purpose of the research was to investigate how barley (Giza 128) responded to extracts from biochar and Moringa oleifera in terms of growth and quality in salt conditions. Three repetitions of each treatment were used in the randomizing complete block design (RCBD) experiment. The experimental treatments were, control, biochar at 3, 6, and 9%, and moringa at 5, 10, and 15% were used. Vegetative growth (plant height, number of tillers/ plant, leaf area, and total chlorophyll), yield and yield components (spike length, number of spike/m2, number of spikelet/ spike, 1000-grain weight, grain yield, biological yield (ton/ha), and harvest index), and chemical composition (percentages of nitrogen, phosphorus, potassium, protein, and carbohydrates) are all examined. In comparison to the control treatment, which recorded lower values of these traits, the results showed that increasing Moringa oleifera extract up to 15% recorded higher levels of all vegetative growth studied, including plant height, number of tillers/plant, leaf area, and total chlorophyll. This was followed by biochar extract up to 9%. Conversely, spike length, number of spikes/m2, number of spikelets/ spike, 1000-grain weight, grain yield, and biological yield (ton/ha) all showed higher values when Moringa oleifera extract was increased up to 15%, while biochar at 9% showed a higher harvest index when compared to the control treatment, which showed lower values of these traits. Additionally, compared to the control treatment, which recorded lower values of every chemical composition examined, Moringa oleifera extract up to 15% recorded higher values of nitrogen, phosphate, potassium, protein, and carbs percentages, followed by biochar extract up to 9%. The study's findings suggest that biochar and marina leaf extract can boost the growth and yield of cereal forages cultivated under stressful conditions. We advise using biochar and moringa leaf extract in place of costly, environmentally harmful inorganic fertilizers in dry regions where salt stress is prevalent.
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المراجع
Abd El-Mageed, T.A., El-Sherif, A.M.A., Abd El-Mageed, S.A. and Abdou, N.M. (2019). A novel compost alleviates drought stressfor sugar beet production grown in Cd-contaminated saline soil. Agric. Water Manag., 226(1):105831.
Abdel Latef, A.A., Abu Alhmad, M.F. and Hammad, S.A. (2017). Foliar application of fresh Moringa leaf extract overcomes salt stress in fenugreek (Trigonella foenumgraecum) plants. Egypt J. Bot., 57(1): 157–179
Abdelhameed, R. E., Galilah, D. A. and Metwally, R. A. (2025). Multifaceted role of Moringa oleifera leaf extract as antimicrobial, growth enhancer and mitigator of salt stress in tomato seedlings. BMC Plant Biol., 25:1144
Abdipour, M., Hosseinifarahi, M. and Najafian S. (2019). Effects of humic acid and cow manure biochar (CMB) in culture medium on growth and mineral concentrations of basil plant. Int. J. Horti. Sci. Techn., 6(1): 27–38
Abiven S, Menassero, S and Chenu, C. (2009). The effect of organic inputs over time on soil aggregate stability a literature analysis. Soil Biol. Biochem. 41:1–12.
Ahmed, M., Marrez, D.A., Abdelmoeen, N.M., Mahmoud, E.A., Abdel-Shakur, A. M., Decsi, K. and Tóth, Z. (2023). Proximate analysis of Moringa Oleifera leaves and the antimicrobial activities of successive leaf ethanolic and aqueous extracts compared with green chemically synthesized Ag-NPs and crude aqueous extract against some pathogens. Int. J. Mol. Sci., 24: 3529.
Akhtar, S.S., Andersen, M.N. and Liu, F.L. (2015). Residual effects of biochar on improving growth, physiology and yield of wheat under salt stress. Agric. Water Manag., 158: 61–68.
Ali, S., Rizwan, M., Qayyum, M.F., Ok, Y.S., Ibrahim, M., Riaz, M., Arif, M.S., Hafeez, F., Al-Wabel, M.I. and Shahzad, A.N. (2017). Biochar soil amendment on alleviation of drought and salt stress in plants: A critical review. Env. Sci. Pollut., 24: 12700–12712.
Ali, Z., Basra, S.M.A., Munir, H., Mahmood, A. and Yousaf, S. (2011). Mitigation of drought stress in maize by natural and synthetic growth promoters.J. Agric. Soc. Sci., 7: 56-62.
Amini, S., Ghadiri, H., Chen, C.R. and Marschner, P. (2016). Salt-affected soils, reclamation, carbon dynamics, and biochar: A review. J. Soil. Sediment, 16: 939–953.
Arif, Y., Bajguz, A. and Hayat, S. (2023). Moringa oleifera extract as a natural plant biostimulant. J. Plant Growth Regul., 42: 1291–306.
Arora, S., and Arora, S. (2021). “Nutritional Significance and Therapeutic Potential of Moringa oleifera: The Wonder Plant.” J. Food Biochem., 45: e13933.
Athnere, S., Chaplot, P.C., Yadav, P. and Garg, K. (2024). Effect of fertility levels and liquid biofertilizers on quality parameters of malt barley (Hordeum vulgare L.). Indian J. Agron., 69(4): 460-465.
Badea, A. and Wijekoon, C. (2021). Benefits of barley grain in animal and human diets. Cereal Grains, 1: 1- 77.
Cakmak, I. (2005). The role of potassium in alleviating detrimental effects of abiotic stresses in plants. J. Plant Nutr. Soil Sci., 168: 521-530.
Cammarano, D., Hawes, C., Squire, G., Holland, J., Rivington, M., Murgia, T., Roggero, P.P., Fontana, F., Casa, R. and Ronga, D. (2019). Rainfall and temperature impacts on barley (Hordeum vulgare L.) yield and malting quality in Scotland. Field Crops Res., 241: 107559
Chernyad, E.V. (2000). Photosynthesis in sugar Methods. 7 Ed. Iowa State University, Press, Ames., beet plants th treated with benzyladenine and Iowa, USA. metribuzine during leaf development. Russ. J. Plant
DeVasconcelos, A.C.F. and Chaves, L.H.G. (2019). Biostimulants and their role in improving plant growth under abiotic stresses. In Biostimulants in Plant Sci. IntechOpen Limited: London, UK, 3–16.
Dhakad, A. K., Ikram, M., Sharma, S., Khan, S., Pandey, V. V. and Singh, A. (2019). Biological, nutritional, and therapeutic significance of Moringa oleifera Lam. Phytoth. Res., 33: 2870–2903.
DosSantos, T.B., Ribas, A.F., de Souza, S.G.H., Budzinski, I.G.F. and Domingues, D.S. (2022). Physiological Responses to Drought, Salinity, and Heat Stress in Plants: A Review. Stresses, 2: 113–135.
Edeh, I.G., Mašek, O. and Buss, W. (2020). A meta-analysis on biochar’s effects on soil water properties new insights and future research challenges. Sci. Total Environ., 714: 136857.
El-Lethy, S. R., Sadak, M. Sh. and Hanafy, R. S. (2024). Assessing the usefulness of Moringa oleifera leaf extract and zeatin in enhancing growth, phytohormones, antioxidant enzymes and osmoprotectants of wheat plant under salinity stress. The Egyptian J. Bot. (EJBO) is published by the Egyptian Botan. Soc. Egypt. J. Bot., 64(3): 183-196
FAO, (2023). Crops and Livestock Products. Available online: https://www.fao.org/ faostat/ en/#data/ QCL (accessed on 10 November 2023).
FAO, IFAD, UNICEF, WFP, WHO (2024). The State of Food Security and Nutrition in the World 2024–Financing to end hunger, food insecurity and malnutrition in all its forms, Rome
Fehmi, J.S., Rasmussen, C. and Gallery, R.E. (2020). Biochar and woodchip amendments alter restoration outcomes, microbial processes, and soil moisture in a simulated semi-arid ecosystem. Restor. Ecol., 28: S355–S364.
Flowers, T.J., Gaur, P.M., Gowda, C.L.L., Krishnamurthy, L., Samineni, S., Siddique, K.H.M., Turner, N.C., Vadez, V., Varshney, R.K. and Colmer, T.D. (2010). Salt sensitivity in chickpea. Plant Cell Environ., 33: 490–509.
Fukase, E. and Martin, W. (2020). Economic growth, convergence, and world food demand and supply. World Dev., 132: 104954.
Garcı́a-Sánchez, F., Jifon, J. L., Carvajal, M. and Syvertsen, J. P. (2002). Gas exchange, chlorophyll and nutrient contents in relation to Na+ and Cl− accumulation in ‘Sunburst’mandarin grafted on different rootstocks. Plant Sci., 162(5): 705-712
Ghorbani, M., Amirahmadi, E., Konvalina, P., Moudrý, J., Bárta, J., Kopecký, M., Teodorescu, R.I. and Bucur, R.D. (2022). Comparative influence of biochar and zeolite on soil hydrological indices and growth characteristics of corn (Zea mays L.). Water 14(21): 3506.
Ghouili, E., Sassi, K., Hidri, Y., M’Hamed, H.C., Somenahally, A., Xue, Q. and Muhovski, Y. (2023). Effects of date palm waste compost application on root proteome changes of barley (Hordeum vulgare L.). Plants, 12 (3): 526.
Gliniak, M., Sikora, J., Sadowska, U., Klimek-Kopyra, A., Latawiec, A. and Kubon, M. (2020). Impact of biochar on waterpermeability in soil. IOP Conference Series: Mater. Sci. Eng., 960(4): 42-57.
Gong, L. (2019). Barley. In Bioactive factors and processing technology for cereal Foods; Wang, J., Sun, B., Tsao, R., Eds., Springer: Singapore, 55–64.
Gusiatin, M.Z. and Rouhani, A. (2023). Application of selected methods to modify pyrolyzed biochar for the immobilization of metals in soil: A review. Mater., 16: 7342.
Habibi, G. (2012). Exogenous salicylic acid alleviates oxidative damage of barley plants under drought stress. Acta Biologica Szegediensis 56(1):57-63.
Hebers, K. and Sonnewald, V. (1998). "Altered gene expression: brought about by inter and pathogen interactions. J. Plant Res., 111: 323–328.
Imran, S., Afzal, I., Basra, S.M.A. and Saqib, M. (2013). Integrated seed priming with growth promoting substances enhances germination and seedling Vigor of spring maize at low temperature. Int. J. Agric. Biol., 15: 1251–1257.
Kamal, M.Z.U., Sarker, U., Roy, S.K., Alam, M.S., Azam, M.G., Miah, M.Y. and Alamri, S. (2024). Manure-biochar compost mitigates the soil salinity stress in tomato plants by modulating the osmoregulatory mechanism, photosynthetic pigments, and ionic homeostasis. Sci. Rep., 14: 21929.
Khan, S., Basra, S.M.A., Afzal, I., Nawaz, M. and Rehman, H.U. (2017b). Growth promoting potential of fresh and stored Moringa oleifera leaf extracts in improving seedling vigor, growth and productivity of wheat crop. Environ.Sci. Poll. Res., 24: 27601–27612
Langridge, P. (2018). Economic and academic importance of barley. In The Barley Genome; Stein, N., Muehlbauer, G.J., Eds.; Springer International Publishing: Cham, Switzerland, 1–10.
Liao, F., Yang, L., Li, Q., Xue, J., Li, Y., Huang, D. and Yang L. (2019). Effect of biochar on growth, photosynthetic characteristics and nutrient distribution in sugarcane. Sugar Tech., 21: 289-295.
Liu, L., Zhu, N., Zhou, G., Dang, P., Yang, X., Qiu, L. and Chen, J. (2022). Response of soil microbial community to plant composition changes in broad-leaved forests of the karst area in Mid-Subtropical China. Peer. J., 10: 12739.
Major, J., Rondon, M., Molina, D., Riha, S. J., and Lehmann, J. (2010). Maize yield and nutrition during 4 years after biochar application to a Colombian savanna oxisol. Plant Soil, 333: 117–128.
Mansoor, S., Kour, N., Manhas, S., Zahid, S., Wani, O.A., Sharma, V. and Ahmad, P. (2021). Biochar as a tool for effective management of drought and heavy metal toxicity. Chemos., 271: 129458.
Manuchehri, R. and Salehi, H. (2014). Physiological and biochemical changes of common bermudagrass (Cynodon dactylon [L.] Pers.) under combined salinity and deficit irrigation stresses. South Afri. J. Bot., 92, 83-88
Mehrabi, A., Zareiyan, M., Maryamabadi, A., Ghajarbeygi, P., Zarei, H., Ramezani, H. and Mahmoudi, R. (2024). Assessment of heavy metals in rice brands and their potential risk on public health. J. Chem. Health Risks, 14 (2).
Mgbeahuruike, A.C., Edeh, G., Eze, C.S., Parker, J., Ekere, S.O., Kanu, O.O. and Dibua, E. (2017). Comparative evaluation of the antimicrobial profile of Moringa leaf and seed oil extracts against resistant strains of wound pathogens in orthopedic hospitals. Afr. J. Microb. Res., 11 (39): 1484–1494.
Minolta, (1989). Chlorophyll meter SPAD-502. Instruction manual. Minolta Co., Ltd., Radiometric Instruments Operations, Osaka, Japan.
Montgomery, L. Y. R. (1961). The carbohydrate of ovalbumin. Arch Biochem Biophys. 95: 263-270.
Muhammad, A. I. (2014). Role of Moringa, Brassica and Sorghum water extracts in increasing crop growth and yield. American-Eurasians J. Agric. Environ. Sci., 14(11): 1150-1168
Muhamman, M. A., Auwalu, B. M., Manga, A. A. and Gibrin, J. M. (2013). Effects of aqueous extract of Moringa (Moringa olifera Lam.) and nitrogen rates on some physiological attributes and yield of Tomato. Int. J. Chem. Biol. Sci., 1(1): 67-74
Naeem, M. A., Khalid, M., Aon, M., Abbas, G., Tahir, M. and Amjad, M. (2017). Effect of wheat and rice straw biochar produced at different temperatures on maize growth and nutrient dynamics of a calcareous soil. Arch. Agron. Soil Sci., 63: 2048–2061.
Negacz, K., Malek, Ž., de Vos, A. and Vellinga P. (2022). Saline soils worldwide: Identifying the most promising areas for saline agriculture. J. Arid. Environ. 203: 104775.
Nouman, W., M Siddiqui,.T. and Basra, S.M.A. (2012a). Moringa oleifera leaf extract: An innovative priming tool for rangeland grasses. Turk. J. Agric. For., 36: 65-75.
Owusu, D. (2008). Phytochemical Composition of Ipomea batatus and Moringa oleifera Leaves and Crackers from Underutilized Flours MSc. Thesis Dept of Biochem and Biotech, Faculty of BioScience, College of Science, Kwame Nkrumah University of Science Technology.
Prasad, J., Thomas, T., Bharosre, R. and Mir, Z.A. (2019). Effect of organic and inorganic sources of nutrients on growth and yield of barley (Hordeum vulgare L.). J. Pharmacogn Phytochem., 8(21): 521-523.
Price, M. (2007). The Moringa Tree. ECHO Tech. Note, eBook. Retrieved from http://miracletrees.org/ moringa-doc/ebookMoringa.pdf
Qi, X., Yang, G., Li, Y., Hou, Z., Shi, P., Wang, S., Xie, X. (2024). Optimizing biochar application rates for improved soil chemical environments in cotton and sugarbeet fields under trickle irrigation with plastic mulch. Soil Till. Res. 235, 105893.
Qian, Z., Tang, L., Zhuang, S., Zou, Y., Fu, D. and Chen, X. (2020). Effects of biochar amendments on soil water retention characteristics of red soil at south China. Biochar, 2: 479–488.
Rady, M. M., Varma, C. B. and Howladar, S.M. (2013). Common bean (Phaseolus vulgaris L.) seedlings overcome NaCl stress as a result of presoaking in Moringa oleifera leaf extract. Scientia Horti., 162: 63-70.
Ravichandran, S. (2024). Significances of plant nutrients in agriculture. Int. J. Agric. Environ. Sustain., 6 (1): 25–27.
Saa, R. W., Fombang, E. N., Ndjantou, E. B. and Njintang, N. Y. (2019). Treatments and Uses of Moringa oleifera Seeds in Human Nutrition: A Review. Food Sci. Nutri., 7: 1911–1919.
Sadak, M.S., Dawood, M.G. and El-Awadi, M.E.S. (2024). Changes in growth, photosynthetic pigments and antioxidant system of Hordeum vulgare plant grown under salinity stress via signal molecules application. Vegetos, 1-17.
Serrago, R.A., García, G.A., Savin, R., Miralles, D.J. and Slafer, G.A. (2023). Determinants of grain number responding to environmental and genetic factors in two-and six-rowed barley types. Field Crops Res., 302: 109073.
Shokri, N., Hassani, A. and Sahimi, M. (2024). Multi-Scale Soil Salinization Dynamics From Global to Pore Scale: A Review. Rev. Geophys. 62, e2023RG000804.
Siddhuraju, P. and Becker, K. (2003). Antioxidant properties of various solvent extracts of total phenolic constituents from three different agro climatic origins of drumstick tree (Moringa oleifera Lam.) leaves. J. Agric. Food Chem., 51: 2144‒2155.
Singh, J. and Thakur, J.K. (2018). Photosynthesis and abiotic stress in plants. In Biotic and Abiotic Stress Tolerance in Plants; Springer: Berlin/Heidelberg, Germany, 27–46.
Singh, R., Mishra, S., Chaturvedi, P. K., Mishra, C. K., Singh, V., Gautam, B. and Kumar, V. (2025). Effect of integrated nutrient management on performance, productivity and economic feasibility of barley (Hordeum vulgare L.) in Easter Uttar Pradesh. Int. J. Res. Agron., 8(3): 44-47
Sivakumar, V. and V. Ponnusami (2011). Influence of spacing and organics on plant nutrient uptake of black nightshade (Solanum nigrum). J. Horti. Forest 3:333-335
Smith, D., Paulsen, G.M. and Raguse C.A. (1964). Extraction of total available carbohydrates from grass and legume tissue. Plant Physiol., 39(6): 960-962.
Snedecor, G.W. and Cochran, W.G. (1990). Statistical methods, 8th+ Edn. Ames: Iowa State Univ. Press Iowa. 54:71-82.
Su, Z.J., Zhang, Y.M., Xu, H.W., Xu, W.M., Liu, C., Rui, S. and Xiang, P. (2024). Preparation and applications of iron/biochar composites in remediation of heavy metal contaminated soils: current status and further perspectives. Environ. Technol. Innov., 35: 103671.
Sun, C.X., Chen, X., Cao, M.M., Li, M.Q. and Zhang, Y.L. (2017). Growth and metabolic responses of maize roots to straw biochar application at different rates. Plant and Soil 416:487-502.
Taffouo, V. D., Nouck, A. H., Dibong, S. D. and Amougou, A. (2010). Effects of salinity stress on seedlings growth, mineral nutrients and total chlorophyll of some tomato (Lycopersicum esculentum L.) cultivars. Afri. J. Biotech., 9(33): 5366-5372
Turan, V. (2020). Potential of pistachio shell biochar and dicalcium phosphate combination to reduce Pb speciation in spinach, improved soil enzymatic activities, plant nutritional quality, and antioxidant defense system. Chemosphere 245, 125611.
Vaccari, F., Baronti, S., Lugato, E., Genesio, L., Castaldi, S., Fornasier, F. and Miglietta, F (2011). Biochar as a strategy to sequester carbon and increase yield in durum wheat. Eur. J. Agron., 34: 231–238.
Van Dijk, M., Morley, T. and Rau, M.L. (2021). A meta-analysis of projected global food demand and population at risk of hunger for the period 2010–2050. Nat. Food, 2: 494–501.
Yadav, R. and Ramakrishna, W. (2023). Biochar as an environment-friendly alternative for multiple applications. Sustain., 15: 13421.
Yameogo, C.W., Bengaly, M.D., Savadogo, A., Nikiema, P. A. and Traore, S.A. (2011). Determination of chemical composition and nutritional values of Moringa oleifera leaves. Pak. J. Nutr., 10: 264–268
Yang, M., Tao, L. and Kang, X. R. (2023). “Moringa oleifera Lam. leaves as new raw food material: a review of its nutritional composition, functional properties, and comprehensive application.” Trends Food Sci. Techn., 138: 399-416.
Yasmeen, A., Basra, S., Ahmad, M.A. R. and Wahid, A. (2012a). Performance of late sown wheat in response to foliar application of Moringa oleifera Lam. leaf extract. Chil. J. Agric. Res., 72: 92-97.
Yasmeen, A., Basra, S.M.A., Farooq, M., Rehman, H., Hussain, N. and Athar, H.R. (2013). Exogenous application of moringa leaf extract modulates the antioxidant enzyme system to improve wheat performance under saline conditions. Plant Growth Regul., 69: 225-233.
Youssef, A.M. (2009). Salt Tolerance mechanisms in some halophytes from Saudi Arabia and Egypt. Res. J. Agric. Biol. Sci., 5: 191–206.
Zeng, Y., Pu, X., Du, J., Yang, X., Li, X., Mandal, M.S.N., Yang, T. and Yang, J. (2020). Molecular mechanism of functional ingredients in barley to combat human chronic diseases. Oxid. Med. Cell. Longev., 3836172
Zhang, W., Niu, W. and Luo, H. (2024). Effect of biochar amendment on the growth and photosynthetic traits of plants under drought stress: A meta- analysis. Agron., 14: 2952.
Zhao, X. and Hu, M. (2021). Capillary forces between particles: Role of biochar in improving water retention capacity of soil. Arab J. Gehglosci., 14: 1769.
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