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Yıl 2024, Cilt: 13 Sayı: 2, 119 - 130, 28.12.2024
https://doi.org/10.21657/soilst.1601789

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Biostimulants for sustainable agriculture in forage crops

Yıl 2024, Cilt: 13 Sayı: 2, 119 - 130, 28.12.2024
https://doi.org/10.21657/soilst.1601789

Öz

Biostimulants, a promising avenue in agriculture, are substances that significantly enhance plant growth and productivity. They are a rich source of various compounds and microorganisms, including humic substances, amino acids, seaweed extracts, chitin and chitosan polymers, inorganic compounds, seed and root extracts, and organic wastes. Humic substances derived from decomposed organic matter are crucial in improving soil structure and nutrient availability. On the other hand, amino acids and protein hydrolysates promote nitrogen uptake and stress resistance, enhancing plant growth. The rich in polysaccharides and phytohormones, seaweed extracts enhance root development and stress tolerance. Polymers such as chitin and chitosan, derived from crustaceans and fungi, provide protective effects against pathogens and environmental stressors. Inorganic compounds and plant extracts also contribute to growth and resistance. The growing global biostimulants market is a testament to the increasing demand for environmentally friendly agricultural solutions, highlighting the urgency of adopting these solutions. Unlike traditional fertilizers, biostimulants do not directly provide nutrients but improve how plants use available nutrients more efficiently. Research underscores the potential of biostimulants to contribute to sustainable agriculture by increasing yield, quality, and disease resistance. Indispensable in modern agriculture, biostimulants are the key to creating sustainable and productive agricultural systems with more resilient plants by stimulating the development of crops, especially under unfavorable conditions, and improving crop quality.

Kaynakça

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  • Peñas-Corte, M., Bouzas, P. R., Nieto del Río, J., Manzanera, M., Barros-Rodríguez, A., & Fernández-Navarro, J. R. (2024). Enhancing maize stress tolerance and productivity through synergistic application of Bacillus velezensis A6 and Lamiales plant extract, biostimulants suitable for organic farming. Biology, 13(9), 718. https://doi.org/10.3390/biology13090718
  • Piccolo, A. & Spiteller, M. (2003). Electrospray ionization mass spectrometry of terrestrial humic substances and their size fractions. Analytical and Bioanalytical Chemistry, 377(6), 1047–1059. https://doi.org/10.1007/s00216-003-2186-5
  • Pretorius, J. C. (2013). Extracts and compounds from “Agapanthus africanus” and their use as biological plant protecting agents. U.S. Patent No:8, 435-571.
  • Priolo, D., Tolisano, C., Ballerini, E., Brienza, M. & Del Buono, D. (2024). Stimulatory Effect of an Extract of Lemna minor L. in Protecting Maize from Salinity: A Multifaceted Biostimulant for Modulating Physiology, Redox Balance, and Nutrient Uptake. Agriculture, 14, 705. https://doi.org/10.3390/agriculture14050705
  • Przybysz, A., Gawrońska, H., & Gajc-Wolska, J. (2014). Biological mode of action of a nitrophenolates-based biostimulant: case study. Frontiers in Plant Science, 5, 713. https://doi.org/10.3389/fpls.2014.00713
  • Povero, G., Mejia, J. F., Di Tommaso, D., Piaggesi, A. & Warrior, P. A. (2016). Systematic Approach to Discover and Characterize Natural Plant Biostimulants. Frontiers in Plant Science, 7, 435. https://doi.org/10.3389/fpls.2016.00435
  • Qiu, Y., Amirkhani, M., Mayton, H., Chen, Z. & Taylor, A.G. (2020). Biostimulant seed coating treatments to improve cover crop germination and seedling growth. Agronomy, 10 (2),154. https://doi.org/10.3390/agronomy10020154
  • Radkowski, A., Radkowska, I., Bocianowski, J., Sladkovska, T. & Wolski, K. (2020). The Effect of Foliar Application of an Amino Acid-Based Biostimulant on Lawn Functional Value. Agronomy, 10(11), 1656. https://doi.org/10.3390/agronomy10111656
  • Rayorath, P., Jithesh, M. N., Farid, A., Khan, W., Palanisamy, R., Hankins, S. D., Critchley, A. T. & Prithiviraj, B. (2008). Rapid bioassays to evaluate the plant growth promoting activity of Ascophyllum nodosum (L.) Le Jol. using a model plant, Arabidopsis thaliana (L.) Heynh. Journal of Applied Phycology, 20(4), 423-429. https://doi.org/10.1007/s10811-007-9280-6
  • Rouphael Colla, G. (2018). Synergistic Biostimulatory Action: Designing the Next Generation of Plant Biostimulants for Sustainable Agriculture. Frontiers Plant Science, 9, 1655. https://doi.org/10.3389/fpls.2018.01655
  • Ryan, M. H., Norton, R. M., Kirkegaard, J. A., McCormick, K. M., Knights, S. E. & Angus, J. F. (2002). Increasing mycorrhizal colonization does not improve growth and nutrition of wheat on Vertosols in south-eastern Australia. Australian Journal of Agricultural Research, 53(10), 1173-1181. https://doi.org/10.1071/AR02005
  • Saadat, D., Siller, A., & Hashemi, M. (2023). Phenology, Nitrogen Status, and Yield of Red Clover (Trifolium pretense L.) Affected by Application of Vitamin B12, Humic Acid, and Enriched Biochar. Agronomy, 13, 2885. https://doi.org/10.3390/agronomy13122885
  • Sahoo, R., K., Ansari, M., W., Dangar, T., K., Mohanty, S. & Tuteja, N. (2013). Phenotypic and molecular characterization of efficient nitrogen fixing Azotobacter strains of the rice fields. Protoplasma, https://doi.org/10.1007/s00709-013-0547-2
  • Sánchez-Gómez, R., Zalacain, A., Pardo, F., Alonso, G. L. & Salinas, M. R. (2016). An innovative use of vine-shoots residues and their “feedback” effect on wine quality. Innovative Food Science & Emerging Technologies, 37, 18-26. https://doi.org/10.1016/j.ifset.2016.07.021
  • Senthilraja, K., Jothimani, P., & Rajannan, G. (2013). Effect of brewery wastewater on growth and physiological changes in maize, sunflower and sesame crops. Int J Life Sci Educ Res, 1(1), 36-42.
  • Sever Mutlu, S., Sever, E. & Sonmez, S. (2019). Mikrobiyal gübre uygulamalarının Lolium perenne L. türünün çim performansı üzerine etkileri. Mediterranean Agricultural Sciences; 147-155. https://doi.org/10.29136/mediterranean.560213
  • Sezen, G. & Küçük, Ç. (2021). Microcystis viridis ve Aphanizomenon gracile Karışık Kültürün Fiğ, Nohut ve Arpa Gelişimine Etkileri. Commagene Journal of Biology, 5(2); 182-186. https://doi.org/10.31594/commagene.1031232
  • Sezen, G. & Küçük, Ç. 2023. Mısır (Zea mays L. ) ve Mercimek (Lens culinaris Medik) Gelişimi Üzerine Microcystis viridis ve Aphanizomenon gracile Karışımının Etkisi. Commagene Journal of Biology, 7(2); 141-146. https://doi.org/10.31594/commagene.1396910
  • Sharma, P., Sardana, V. & Kandola, S. S. (2011). Response of groundnut (Arachishypogaea L.) to Rhizobium Inoculation. Libyan Agriculture Research Center Journal International, 2 (3), 101–104
  • Sharma, S. S., & Dietz, K. J. (2006). The significance of amino acids and amino acid-derived molecules in plant responses and adaptation to heavy metal stress. Journal of Experimental Botany, 57(4), 711-726. https://doi.org/10.1093/JXB/ERJ073
  • Shen, J., Guo, M. J., Wang, Y. G., Yuan, X. Y., Wen, Y. Y., Song, X. E., Dong, S. Q. & Guo, P. Y. (2020). Humic acid improves the physiologial and photosynthetic characteristics of millet seedlings under drought stress. Plant Signal Behav. 15, 1774212. https://doi.org/10.1080/15592324.1774212
  • Sheng, X. F. & He, L. Y. (2006). Solubilization of potassium-bearing minerals by a wildtype strain of Bacillus edaphicus and its mutants and increased potassium uptake by wheat. Canadian Journal of Microbiology, 52, 66–72. https://doi.org/10.1139/w05-117
  • Smith, S. E., Jakobsen, I., Grønlund, M. & Smith, F. A. (2011). Roles of arbuscular mycorrhizas in plant phosphorus nutrition: interactions between pathways of phosphorus uptake in arbuscular mycorrhizal roots have important implications for understanding and manipulating plant phosphorus acquisition. Plant Physiol 156; 1050–1057. https://doi.org/10.1104/pp.111.174581
  • Şanlı, A., Ok, F. Z. & Erbaş, S. (2023). Yapraktan Amino Asit Uygulamalarının Bazı Şeker Pancarı (Beta vulgaris var. saccharifera L.) Çeşitlerinin Verim ve Kalitesine Etkileri. Yüzüncü Yıl Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 28(1), 290-298. https://doi.org/10.53433/yyufbed.1188512
  • Şen, F., Eroğul, D. & Altuntaş, Ö. (2022). Yapraktan Farklı Biyostimülant Uygulama Programlarının ‘0900 Ziraat’ Kiraz Meyvelerinin Kalitesi ve Hasat Sonrası Dayanımına Etkisi. ISPEC Tarım Bilimleri Dergisi. https://doi.org/10.46291/ISPECJASvol6iss2id302
  • Trethewey, J., Rolston, M. P., McCloy, B. L., & Chynoweth, R. J. (2016), The plant growth regulator, trinexapac-ethyl, increases seed yield in annual ryegrass (Lolium multiflorum Lam.), New Zealand Journal of Agricultural Research, 59, 113 – 121. https://doi.org/10.1080/00288233.2015.1134590
  • Torres-García, A., Héctor-Ardisana, E. F., León-Aguilar, R., Zambrano-Gavilanes, F. E. & Fosado Téllez, O. A. (2024). Vermicompost Leachate-Based Biostimulant and its Effects on Physiological Variables and Yield of Different Crops in Manabí, Ecuador. Ciencia & Tecnología Agropecuaria, 25(1). https://doi.org/10.21930/rcta.vol25_num1_art:3388.
  • Ugolini, L., Cinti, S., Righetti, L., Stefan, A., Matteo, R., D’Avino, L. & Lazzeri L. (2015). Production of an enzymatic protein hydrolyzate from defatted sunflower seed meal for potential application as a plant biostimulant. Industrial Crops and Products, 75, 15-23.https://doi.org/10.1016/j.indcrop.2014.11.026
  • Umarusman, M. A., Aysan, Y. & Özgüven, M. (2019). Farklı bitki ekstraktlarının bezelye bakteriyel yaprak yanıklığına (Pseudomonas syringae pv. pisi) antibakteriyel etkilerinin araştırılması. Tekirdağ Ziraat Fakültesi Dergisi, 16(3), 297-314.
  • Vessey, J. K. (2003). Plant growth promoting rhizobacteria as biofertilizers. Plant Soil, 255, 571–586. https://doi.org/10.1023/a:1026037216893
  • Yakhin, I. A., Ibragimov, R. I., Yakhin, O. I., Isaev, R. F. & Vakhitov, V. A. (1998). The induced effect of biopreparation stifun on the accumulation of trypsin inhibitors in potato tubers during storage. Russian Agricultural Sciences, 4; 12–13. https://doi.org/10.3389/fpls.2016.02049
  • Yakhin, O. I., Lubyanov, A. A., Yakhin, I. A. & Brown, P. H., (2017). Biostimulants in plant science: a global perspective. Frontiers in Plant Science, 7; 204. https://doi.org/10.3389/fpls.2016.02049
  • Yasmeen, A., Nouman, W., Basra, S. M. A., Wahid, A., Rehman, H., Hussain, N. & Afzal, I. (2014). Morphological and physiological response of tomato (Solanum lycopersicum L.) to natural and synthetic cytokinin sources: a comparative study. Acta Physiologiae Plantarum, 36(12); 3147-3155. https://doi.org/10.1007/s11738-014-1662-1
Toplam 105 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Ziraat Mühendisliği (Diğer)
Bölüm Reviews
Yazarlar

Nurbaki Akdağ 0000-0002-2610-2799

Cengiz Sancak

Cansu Telci Kahramanoğulları Bu kişi benim

Yayımlanma Tarihi 28 Aralık 2024
Gönderilme Tarihi 22 Ağustos 2024
Kabul Tarihi 6 Kasım 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 13 Sayı: 2

Kaynak Göster

APA Akdağ, N., Sancak, C., & Telci Kahramanoğulları, C. (2024). Biostimulants for sustainable agriculture in forage crops. Soil Studies, 13(2), 119-130. https://doi.org/10.21657/soilst.1601789