Year 2024,
Volume: 8 Issue: 4, 797 - 804, 28.12.2024
Nihan Şahin
,
Levent Arın
,
Elif Boz
,
Emir Urcan
Project Number
NKUBAP.03.DPÖ.22.446
References
-
Alan, Ö., & İlbi, H. (2018). Ekim öncesi tohum uygulamaları (priming) yapılan tohumlarda depolama. TÜRKTOB Türkiye Tohumcular Birliği Dergisi, 28, 20-22.
-
Arın, L., & Arabacı, Ç. (2019). The influence of exogenous capsaicin application on the germination, seedling growth, and yield of pepper. Turkish Journal of Agriculture and Forestry, 43, 500-507. https://doi.org/10.3906/tar-1903-86
-
Azarmi, R., Hajieghrari, B., & Giglou, A. (2011). Effect of Trichoderma isolates on tomato seedling growth response and nutrient uptake. African Journal of Biotechnology, 10(31), 5850-5855. https://doi.org/https://doi.org/10.5897/AJB10.1600
-
Becker, N., Petrić, D., Zgomba, M., Boase, C., Madon, M. B., Dahl, C., & Kaiser, A. (2020). Subfamily Anophelinae. In Mosquitoes (pp. 169-192). Springer. https://doi.org/https://doi.org/10.1007/978-3-540-92874-4_9
-
Çelebi, M. (2019). Effects of different growing media on the yield in tomato, cucumber and pepper, and on seedling in tomato. Tekirdağ Ziraat Fakültesi Dergisi, 16(2), 112-120. https://doi.org/https://doi.org/10.33462/jotaf.332857
-
Chakraborti, S., Bera, K., Sadhukhan, S., & Dutta, P. (2022). Bio-priming of seeds: Plant stress management and its underlying cellular, biochemical and molecular mechanisms. Plant Stress, 3, 100052. https://doi.org/https://doi.org/10.1016/j.stress.2021.100052
-
Core, T. R. (2013). R: A language and environment for statistical computing. de Mendiburu, F., & de Mendiburu, M. F. (2019). Package ‘agricolae’. R Package, version, 1(3).
-
Diaz-Badillo, A., Bolling, B. G., Perez-Ramirez, G., Moore, C. G., Martinez-Munoz, J. P., Padilla-Viveros, A. A., Camacho-Nuez, M., Diaz-Perez, A., Beaty, B. J., & de Lourdes Munoz, M. (2011). The distribution of potential West Nile virus vectors, Culex pipiens pipiens and Culex pipiens quinquefasciatus (Diptera: Culicidae), in Mexico City. Parasites & Vectors, 4(1), 1-12. https://doi.org/https://doi.org/10.1186/1756-3305-4-70
-
Duguma, D., Kaufman, M. G., & Simas Domingos, A. B. (2017). Aquatic microfauna alter larval food resources and affect development and biomass of West Nile and Saint Louis encephalitis vector Culex nigripalpus (Diptera: Culicidae). Ecology and Evolution, 7(10), 3507-3519. https://doi.org/https://doi.org/10.1002/ece3.2947
-
FAOSTAT. (2023). Crops and livestock products. FAO.
-
Farooq, M., Basra, S., Saleem, B., Nafees, M., & Chishti, S. (2005). Enhancement of tomato seed germination and seedling vigor by osmopriming. Pakistan Journal of Agricultural Sciences, 42, 3-4.
-
Hernández, J. A., Díaz-Vivancos, P., Acosta-Motos, J. R., & Barba-Espín, G. (2021). Potassium nitrate treatment is associated with modulation of seed water uptake, Antioxidative Metabolism and Phytohormone Levels of Pea Seedlings. Seeds, 1(1), 5-15. https://doi.org/https://doi.org/10.3390/seeds1010002
-
Hernández-Herrera, R. M., Santacruz-Ruvalcaba, F., Ruiz-López, M. A., Norrie, J., & Hernández-Carmona, G. (2014). Effect of liquid seaweed extracts on growth of tomato seedlings (Solanum lycopersicum L.). Journal of Applied Phycology, 26(1), 619-628. https://doi.org/10.1007/s10811-013-0078-4
-
Jung, B., Alsanius, B. W., & Jensén, P. (1999). Effects of some plant and microbial metabolites on germination and emergence of tomato seedlings. International Symposium on Growing Media and Hydroponics 548,
-
Kaufman, M. G., Walker, E. D., Smith, T. W., Merritt, R. W., & Klug, M. J. (1999). Effects of larval mosquitoes (Aedes triseriatus) and stemflow on microbial community dynamics in container habitats. Applied and environmental microbiology, 65(6), 2661-2673. https://doi.org/https://doi.org/10.1128/AEM.65.6.2661-2673.1999
-
Levizou, E., Statiris, G., Papadimitriou, T., Laspidou, C. S., & Kormas, K. A. (2017). Lettuce facing microcystins-rich irrigation water at different developmental stages: Effects on plant performance and microcystins bioaccumulation. Ecotoxicology and Environmental Safety, 143, 193-200. https://doi.org/https://doi.org/10.1016/j.ecoenv.2017.05.037
-
Li, H. M., Lu, X. M., Chen, J., & Jiang, R. R. (2023). Variation in Growth and Physiological Characteristics of Tomato Seedlings Exposed to Different Leds Light Quality. Pakistan Journal of Botany, 55(4), 1347-1352. https://doi.org/10.30848/Pjb2023-4(41)
-
Mereddy, R., Wu, L., Hallgren, S. W., Wu, Y., & Conway, K. E. (2000). Solid Matrix Priming Improves Seedling Vigor of Okra Seeds. Proceedings of the Oklahoma Academy of Science, 80, 33-37.
-
Muturi, E. J., Dunlap, C., & Caceres, C. E. (2020). Microbial communities of container aquatic habitats shift in response to Culex restuans larvae. FEMS microbiology ecology, 96(7), fiaa112. https://doi.org/https://doi.org/10.1093/femsec/fiaa112
-
Nakaune, M., Tsukazawa, K., Uga, H., Asamizu, E., Imanishi, S., Matsukura, C., & Ezura, H. (2012). Low sodium chloride priming increases seedling vigor and stress tolerance to in tomato. Plant Biotechnology, 29(1), 9-18. https://doi.org/10.5511/plantbiotechnology.11.1122a
-
Nawaz, A., Amjad, M., Pervez, M. A., & Afzal, I. (2011). Effect of halopriming on germination and seedling vigor of tomato. African Journal of Agricultural Research, 6(15), 3551-3559.
-
Paradise, C. J., & Dunson, W. A. (1998). Effects of sodium concentration on Aedes triseriatus (Diptera: Culicidae) and microorganisms in treeholes. Journal of medical entomology, 35(5), 839-844. https://doi.org/https://doi.org/10.1093/jmedent/35.5.839
-
Pinto, J. R. d. S., de Freitas, R. M., Leite, T. d. S., Oliveira, F. d. A. d., Ferreira, H., & Leite, M. d. S. (2016). Growth of young Tabebuia aurea seedlings under irrigation with wastewater from fish farming. Revista Brasileira de Engenharia Agrícola e Ambiental, 20, 519-524. https://doi.org/https://doi.org/10.1590/1807-1929/agriambi.v20n6p519-524
-
Righini, H., Francioso, O., Di Foggia, M., Prodi, A., Quintana, A. M., & Roberti, R. (2021). Tomato seed biopriming with water extracts from, and as a new agro-ecological option against. Scientia Horticulturae, 281, 109921. https://doi.org/ARTN10992110.1016/j.scienta.2021.109921
-
Şahin, N., Arın, L., Uludağ, M., Şakacı, Z., & Kar, S. (2022). Priming Applications with Mosquito (Diptera: Culicidae) Larva Rearing Water in White Cabbage Seeds (Brassica oleracea L. var. capitata F. alba cv. Yalova 1). International Journal of Environment, Agriculture and Biotechnology, 7, 4. https://doi.org/https://dx.doi.org/10.22161/ijeab
-
Shannag, H. K., Al-Mefleh, N. K., & Freihat, N. M. (2021). Reuse of wastewaters in irrigation of broad bean and their effect on plant-aphid interaction. Agricultural Water Management, 257, 107156. https://doi.org/https://doi.org/10.1016/j.agwat.2021.107156
-
Singh, P., Singh, J., Ray, S., Rajput, R. S., Vaishnav, A., Singh, R. K., & Singh, H. B. (2020). Seed biopriming with antagonistic microbes and ascorbic acid induce resistance in tomato against Fusarium wilt. Microbiological Research, 237, 126482. https://doi.org/https://doi.org/10.1016/j.micres.2020.126482
-
Toribio, A., Jurado, M., Suárez-Estrella, F., López, M., López-González, J., & Moreno, J. (2021). Seed biopriming with cyanobacterial extracts as an eco-friendly strategy to control damping off caused by Pythium ultimum in seedbeds. Microbiological Research, 248, 126766. https://doi.org/https://doi.org/10.1016/j.micres.2021.126766
-
Walker, E. D., Lawson, D. L., Merritt, R. W., Morgan, W. T., & Klug, M. J. (1991). Nutrient Dynamics, Bacterial-Populations, and Mosquito Productivity in Tree Hole Ecosystems and Microcosms. Ecology, 72(5), 1529-1546. https://doi.org/10.2307/1940953
Assessing the potential of mosquito larval rearing water for enhanced tomato seedling establishment
Year 2024,
Volume: 8 Issue: 4, 797 - 804, 28.12.2024
Nihan Şahin
,
Levent Arın
,
Elif Boz
,
Emir Urcan
Abstract
Vigorous seedlings guarantee satisfactory production in the forward stages of the vegetation period. This study aimed to evaluate the impact of bio-based rearing water of two mosquito species (Culiseta sp. and Culex sp.) on tomato germination, emergence, and seedling quality. For this purpose, two distinct larval-rearing waters (LRW)(with diverse larval densities), and fry food-applied water were used as bio-priming agents. The findings revealed that using bio-based rearing water could enhance the vigor of tomato seeds. All Culex sp. derived LRWs had a shorter mean germination time than the control group. One Culex sp. derived larval rearing water treatment resulted in the shortest mean germination time (4.35 days), whereas one Culiseta sp. derived larval rearing water treatment resulted in the longest (6.20 days). There were no statistically significant differences in stem length but significant differences in plant length. Plant length was shorter in larval rearing water and fry food-applied water than in the control. The stem diameters of plants primed with larval rearing water were generally wider than the control. According to analyses of the plant length, stem length, and stem diameter measurements, the larval rearing water and fry food-applied water treatments may have had a reductive influence on plant length but provided significant support for thicker seedlings, which are more beneficial for seedlings. Other germination and growth characteristics (vigor index of germination, emergence percentage, mean time of emergence, vigor index of emergence, plant length, stem length, leaf width, leaf length, stem fresh weight, stem dry weight, root dry weight) did not show significant variation among treatments. Using larval rearing water as a bio-priming agent in agriculture offers several benefits. Larval rearing water enhances seed germination and vigor due to its possibly rich nutrient content and bioactive compounds, promoting faster and more uniform germination. It is an eco-friendly and cost-effective alternative to chemical treatments, supporting sustainable agricultural practices.
Supporting Institution
Tekirdag Namik Kemal University Scientific Research Projects Division
Project Number
NKUBAP.03.DPÖ.22.446
Thanks
We are grateful to Prof. Dr. Sırrı KAR for providing us with the larval rearing waters.
References
-
Alan, Ö., & İlbi, H. (2018). Ekim öncesi tohum uygulamaları (priming) yapılan tohumlarda depolama. TÜRKTOB Türkiye Tohumcular Birliği Dergisi, 28, 20-22.
-
Arın, L., & Arabacı, Ç. (2019). The influence of exogenous capsaicin application on the germination, seedling growth, and yield of pepper. Turkish Journal of Agriculture and Forestry, 43, 500-507. https://doi.org/10.3906/tar-1903-86
-
Azarmi, R., Hajieghrari, B., & Giglou, A. (2011). Effect of Trichoderma isolates on tomato seedling growth response and nutrient uptake. African Journal of Biotechnology, 10(31), 5850-5855. https://doi.org/https://doi.org/10.5897/AJB10.1600
-
Becker, N., Petrić, D., Zgomba, M., Boase, C., Madon, M. B., Dahl, C., & Kaiser, A. (2020). Subfamily Anophelinae. In Mosquitoes (pp. 169-192). Springer. https://doi.org/https://doi.org/10.1007/978-3-540-92874-4_9
-
Çelebi, M. (2019). Effects of different growing media on the yield in tomato, cucumber and pepper, and on seedling in tomato. Tekirdağ Ziraat Fakültesi Dergisi, 16(2), 112-120. https://doi.org/https://doi.org/10.33462/jotaf.332857
-
Chakraborti, S., Bera, K., Sadhukhan, S., & Dutta, P. (2022). Bio-priming of seeds: Plant stress management and its underlying cellular, biochemical and molecular mechanisms. Plant Stress, 3, 100052. https://doi.org/https://doi.org/10.1016/j.stress.2021.100052
-
Core, T. R. (2013). R: A language and environment for statistical computing. de Mendiburu, F., & de Mendiburu, M. F. (2019). Package ‘agricolae’. R Package, version, 1(3).
-
Diaz-Badillo, A., Bolling, B. G., Perez-Ramirez, G., Moore, C. G., Martinez-Munoz, J. P., Padilla-Viveros, A. A., Camacho-Nuez, M., Diaz-Perez, A., Beaty, B. J., & de Lourdes Munoz, M. (2011). The distribution of potential West Nile virus vectors, Culex pipiens pipiens and Culex pipiens quinquefasciatus (Diptera: Culicidae), in Mexico City. Parasites & Vectors, 4(1), 1-12. https://doi.org/https://doi.org/10.1186/1756-3305-4-70
-
Duguma, D., Kaufman, M. G., & Simas Domingos, A. B. (2017). Aquatic microfauna alter larval food resources and affect development and biomass of West Nile and Saint Louis encephalitis vector Culex nigripalpus (Diptera: Culicidae). Ecology and Evolution, 7(10), 3507-3519. https://doi.org/https://doi.org/10.1002/ece3.2947
-
FAOSTAT. (2023). Crops and livestock products. FAO.
-
Farooq, M., Basra, S., Saleem, B., Nafees, M., & Chishti, S. (2005). Enhancement of tomato seed germination and seedling vigor by osmopriming. Pakistan Journal of Agricultural Sciences, 42, 3-4.
-
Hernández, J. A., Díaz-Vivancos, P., Acosta-Motos, J. R., & Barba-Espín, G. (2021). Potassium nitrate treatment is associated with modulation of seed water uptake, Antioxidative Metabolism and Phytohormone Levels of Pea Seedlings. Seeds, 1(1), 5-15. https://doi.org/https://doi.org/10.3390/seeds1010002
-
Hernández-Herrera, R. M., Santacruz-Ruvalcaba, F., Ruiz-López, M. A., Norrie, J., & Hernández-Carmona, G. (2014). Effect of liquid seaweed extracts on growth of tomato seedlings (Solanum lycopersicum L.). Journal of Applied Phycology, 26(1), 619-628. https://doi.org/10.1007/s10811-013-0078-4
-
Jung, B., Alsanius, B. W., & Jensén, P. (1999). Effects of some plant and microbial metabolites on germination and emergence of tomato seedlings. International Symposium on Growing Media and Hydroponics 548,
-
Kaufman, M. G., Walker, E. D., Smith, T. W., Merritt, R. W., & Klug, M. J. (1999). Effects of larval mosquitoes (Aedes triseriatus) and stemflow on microbial community dynamics in container habitats. Applied and environmental microbiology, 65(6), 2661-2673. https://doi.org/https://doi.org/10.1128/AEM.65.6.2661-2673.1999
-
Levizou, E., Statiris, G., Papadimitriou, T., Laspidou, C. S., & Kormas, K. A. (2017). Lettuce facing microcystins-rich irrigation water at different developmental stages: Effects on plant performance and microcystins bioaccumulation. Ecotoxicology and Environmental Safety, 143, 193-200. https://doi.org/https://doi.org/10.1016/j.ecoenv.2017.05.037
-
Li, H. M., Lu, X. M., Chen, J., & Jiang, R. R. (2023). Variation in Growth and Physiological Characteristics of Tomato Seedlings Exposed to Different Leds Light Quality. Pakistan Journal of Botany, 55(4), 1347-1352. https://doi.org/10.30848/Pjb2023-4(41)
-
Mereddy, R., Wu, L., Hallgren, S. W., Wu, Y., & Conway, K. E. (2000). Solid Matrix Priming Improves Seedling Vigor of Okra Seeds. Proceedings of the Oklahoma Academy of Science, 80, 33-37.
-
Muturi, E. J., Dunlap, C., & Caceres, C. E. (2020). Microbial communities of container aquatic habitats shift in response to Culex restuans larvae. FEMS microbiology ecology, 96(7), fiaa112. https://doi.org/https://doi.org/10.1093/femsec/fiaa112
-
Nakaune, M., Tsukazawa, K., Uga, H., Asamizu, E., Imanishi, S., Matsukura, C., & Ezura, H. (2012). Low sodium chloride priming increases seedling vigor and stress tolerance to in tomato. Plant Biotechnology, 29(1), 9-18. https://doi.org/10.5511/plantbiotechnology.11.1122a
-
Nawaz, A., Amjad, M., Pervez, M. A., & Afzal, I. (2011). Effect of halopriming on germination and seedling vigor of tomato. African Journal of Agricultural Research, 6(15), 3551-3559.
-
Paradise, C. J., & Dunson, W. A. (1998). Effects of sodium concentration on Aedes triseriatus (Diptera: Culicidae) and microorganisms in treeholes. Journal of medical entomology, 35(5), 839-844. https://doi.org/https://doi.org/10.1093/jmedent/35.5.839
-
Pinto, J. R. d. S., de Freitas, R. M., Leite, T. d. S., Oliveira, F. d. A. d., Ferreira, H., & Leite, M. d. S. (2016). Growth of young Tabebuia aurea seedlings under irrigation with wastewater from fish farming. Revista Brasileira de Engenharia Agrícola e Ambiental, 20, 519-524. https://doi.org/https://doi.org/10.1590/1807-1929/agriambi.v20n6p519-524
-
Righini, H., Francioso, O., Di Foggia, M., Prodi, A., Quintana, A. M., & Roberti, R. (2021). Tomato seed biopriming with water extracts from, and as a new agro-ecological option against. Scientia Horticulturae, 281, 109921. https://doi.org/ARTN10992110.1016/j.scienta.2021.109921
-
Şahin, N., Arın, L., Uludağ, M., Şakacı, Z., & Kar, S. (2022). Priming Applications with Mosquito (Diptera: Culicidae) Larva Rearing Water in White Cabbage Seeds (Brassica oleracea L. var. capitata F. alba cv. Yalova 1). International Journal of Environment, Agriculture and Biotechnology, 7, 4. https://doi.org/https://dx.doi.org/10.22161/ijeab
-
Shannag, H. K., Al-Mefleh, N. K., & Freihat, N. M. (2021). Reuse of wastewaters in irrigation of broad bean and their effect on plant-aphid interaction. Agricultural Water Management, 257, 107156. https://doi.org/https://doi.org/10.1016/j.agwat.2021.107156
-
Singh, P., Singh, J., Ray, S., Rajput, R. S., Vaishnav, A., Singh, R. K., & Singh, H. B. (2020). Seed biopriming with antagonistic microbes and ascorbic acid induce resistance in tomato against Fusarium wilt. Microbiological Research, 237, 126482. https://doi.org/https://doi.org/10.1016/j.micres.2020.126482
-
Toribio, A., Jurado, M., Suárez-Estrella, F., López, M., López-González, J., & Moreno, J. (2021). Seed biopriming with cyanobacterial extracts as an eco-friendly strategy to control damping off caused by Pythium ultimum in seedbeds. Microbiological Research, 248, 126766. https://doi.org/https://doi.org/10.1016/j.micres.2021.126766
-
Walker, E. D., Lawson, D. L., Merritt, R. W., Morgan, W. T., & Klug, M. J. (1991). Nutrient Dynamics, Bacterial-Populations, and Mosquito Productivity in Tree Hole Ecosystems and Microcosms. Ecology, 72(5), 1529-1546. https://doi.org/10.2307/1940953