Growth and yield performance of selected soybean (glycine max) varieties with different tillage systems under Occidental Mindoro condition
Keywords:
conventional tillage, minimum tillage, no-tillage, Manchuria, growth and yield performance of soybeanAbstract
This study evaluated the growth and yield performance of soybean (Glycine max L.) under different tillage systems and varieties in the agroclimatic conditions of Occidental Mindoro. The research was conducted from January to May 2025 at the Vegetable Production Project of the Occidental Mindoro State College, Murtha Campus, San Jose, Occidental Mindoro. The study employed a 3 x 3 split-plot design within a randomized complete block design (RCBD). The two factors were: Factor A (Tillage System: A1-Conventional, A2-Minimum, and A3-No-tillage) and Factor B (Variety: Tiwala 6, Tiwala 14, and Manchuria). Results showed that the tillage system had no significant effect (p>0.05) on growth parameters such as plant height, number of leaves, and branches. However, soybean variety had a significant effect (p<0.05) on the number of leaves and branches, with Tiwala 14 performing the best. Similarly, tillage had no significant effect on yield attributes, whereas variety significantly influenced the number of pods, seeds per plant, and yield per hectare. Tiwala 14 recorded the highest yield (4.23 t/ha⁻¹). These results indicate that minimum and no-tillage systems are viable alternatives to conventional tillage when using a high-performing variety like Tiwala 14 under the agroclimatic conditions of San Jose, Occidental Mindoro.
References
Adamič, S. & Leskovšek, R. (2021). Soybean (Glycine max (L.) Merr.) Growth, Yield, and Nodulation in the Early Transition Period from Conventional Tillage to Conservation and No-Tillage Systems. Agronomy. https://doi.org/10.3390/agronomy11122477
Agcopra, J.D.V. L. and Piadozo, M.E. S. (2018). Cost and Price Competitiveness of Soybean Production in Isabela, Philippines. Economics, Management & Agricultural Development. https://jemad.cem.uplb.edu.ph/articles/cost-and-price-competitiveness-of-soybean-production-in-isabela-philippines/
AgFlow. (2023). The Philippines: US supplies 99% of the total soybean demand. https://www.linkedin.com/posts/agflow_the-philippines-us-supplies-99-of-the-total-activity-7112393117319729152-1ayF
Ali, A., Iqbal, Z., Safdar, M. E., Ashraf, M., Aziz, M., Asif, M., Mubeen, M., Noorka, I. R. & Rehman, A. (2013). Comparison of yield performance of soybean varieties under semi-arid conditions. Journal of Animal and Plant Sciences. https://thejaps.org.pk/AbstractView.aspx?mid=2013-JAPS-324
Chorey, A. B., Sahu, A. S., & Gharde, Y. V. (2019). Effect of various tillage practices on soybean productivity and soil moisture dynamics under rainfed condition. International Journal of Current Microbiology and Applied Sciences. https://www.ijcmas.com/special/11/Anita%20B.%20Chorey,%20et%20al.pdf
Department of Agriculture. (2011). Soybean Production Technology and product utilization. https://cagayanvalley.da.gov.ph/wp-content/uploads/2018/02/soybean281111.pdf
Da Silva, G. F., Calonego, J. C., Luperini, B. C. O., Silveira, V. B., Chamma, L., Soratto, R. P., & Putti, F. F. (2023). No-Tillage system can improve soybean grain production more than conventional tillage system. Plants. https://doi.org/10.3390/plants12213762
Dlugosz, J., Dębska, B. & Dlugosz, A. P. (2024). The Effect of Soil Tillage System on the Soil Microbial and Enzymatic Properties Unter Soybean (Glycine max L. Merrill) Cultivation-Implication for Sustainable Soil Management. Sustainability. https://doi.org/10.3390/su162411140
Elias, K. E. (2024). Morpho-agronomic characteristics and yield of new promising Soybean (Glycine max L.) Lines for Bacnotan, La Union, Philippines. International Journal of Biosciences (IJB). https://doi.org/10.12692/ijb/24.3.133-140
El-Sherif, A. & Ali, M. M. (2015). Effect of deficit irrigation and soybean/maize intercropping on yield and water use efficiency. International Journal of Current Microbiology and Applied Sciences. https://www.ijcmas.com/vol-4-12/Ahmed%20M.A.El-Sherif%20and%20Mahmoud%20M.%20Ali.pdf
Fattah, A., Negara, A., Supriadi, K., Hannan, M. F. I., Ardjanhar, A., Beding, P. A., Najamuddin, E., Pustika, A. B., Susilawati, S., Nonci, N., Latifah, E., Arifin, Z., Istiqomah, N., Udiarto, B. K., & Dewayani, W. (2024). Characteristics of several soybean varieties (Glycine max L.) and weed management systems in an effort to increase productivity in low land rice. Frontiers in Sustainable Food Systems. https://doi.org/10.3389/fsufs.2024.1418759
Gawęda, D., Haliniarz, M., Bronowicka-Mielniczuk, U., & Łukasz, J. (2020). Weed infestation and health of the soybean crop depending on cropping system and tillage system. Agriculture, 10(6), 208. https://doi.org/10.3390/agriculture10060208
Ghani, R. A., Omar, S., Jolánkai, M., Tarnawa, A., Kende, Z., Khalid, N., Gyuricza, C. & Kassai, M. K. (2023). Interaction effect of variety and week number on number of leaves at early growth of soybean planted under soilless condition. Agriculture. https://www.mdpi.com/2077-0472/13/9/1713
He, C., Chen, Z., Qiu, K., Chen, J., Bohoussou, Y. N., Dang, Y. P., & Zhang, H. (2023). Effects of conservation agriculture on carbon mineralization: A global meta-analysis. Soil and Tillage Research, 229, 105685. https://doi.org/10.1016/j.still.2023.105685
Hosseini, S. Z., Firouzi, S., Aminpanah, H. & Sadegnehnejhad, H. R. (2016). Effect of tillage system on yield and weed populations of soybean (Gylcin max L.) https://www.scielo.br/j/aabc/a/dMmGHf4VZ8Y3YpFsmS55tCr/?lang=en
Jug, D., Sabo, M., Jug, I., Bojan, S. & Stošić, M. (2010). Effect of different tillage systems on the yield and yield components of soybean [ Glycine max (L.) Merr.]. Acta Agronomica Hungarica. https://www.researchgate.net/publication/240762893_Effect_of_different_tillage_systems_on_the_yield_and_yield_components_of_soybean_Glycine_max_L_Merr
Kihara, J., Bationo, A., Waswa, B., Kimetu, J. M., Vanlauwe, B., Okeyo, J., Mukalama, J., & Martius, C. (2011). EFFECT OF REDUCED TILLAGE AND MINERAL FERTILIZER APPLICATION ON MAIZE AND SOYBEAN PRODUCTIVITY. Experimental Agriculture, 48(2), 159–175. https://doi.org/10.1017/s0014479711000895
Krisnawati, A. & Adie, M. (2015). Selection of Soybean Genotypes by Seed Size and its Prospects for Industrial Raw Material in Indonesia. Procedia Food Science. https://www.sciencedirect.com/science/article/pii/S2211601X15000401
Księżak, J. & Bojarszczuk, J. (2024). The productivity of selected soybean cultivars grown using various cultivation methods. Journal Of Water and Land Development. https://www.jwld.pl/files/2024-03-JWLD-11.pdf
Liu, Q., Kan, Z., He, C., Zhang, H., (2020). Effects of Strategic Tillage on Soil Physiochemical Properties and Grain Yield in Northern China Plain. Agronomy. https://doi.org/10.3390/agronomy10081167
Li, W., Wang, L., Xue, H., Zhang, M., Song, H., Qin, M., & Dong, Q. (2024). Molecular and genetic basis of plant architecture in soybean. Frontiers in Plant Science. https://doi.org/10.3389/fpls.2024.1477616
Magsino, A. dM., Adan, A.J. R., Espinili, M.M. R. (2016). Soybean Production Under Conventional, Organic and Zero Fertilization Schemes. https://calabarzon.depdev.gov.ph/wp-content/uploads/2016/10/Magsino-Soybean-Production-Under-Conventional-Organic-and-Zero-Fertilization-Schemes.pdf
Murithi, H., Wosula, D., Lagos-Kutz, D., Wosula, E. & Hartman, G. (2019). The State of Soybean in the Africa: Soybean Pests. farmdoc DAILY. https:// doi.org/10.22004/ag.econ.302026
Ohashi, S., Kurita, H., Takahashi, Y., Nagasuga, K., Nagaya, Y., & Umezaki, T. (2020). Varietal difference of soybean plant type focus on petiole. Plant Production Science. https://doi.org/10.1080/1343943x.2020.1801349
Ozturk, F. & Sogut, T. (2016). The effect of tillage and plant density on yield and yield components of soybean [glycine max (l.) Merrill] grown under main and double-cropping soybean (glycine max l. Merr.). https://stumejournals.com/journals/am/2016/2/19.full.pdf
Panaynews. (2019). Improving soybean production in the Philippines. AgroPages. https://news.agropages.com/News/Detail-33438.htm?fbclid=IwY2xjawNpzZJleHRuA2FlbQIxMQABHmG2mGFGUJU5F9VqmOv-z98wh7BDxbWbULzQDvKx63rSCLcyNqvgGZZbzm3U_aem_7tgUI_1rdD0hx2dHSKPFlA
Sharifi, A., Sadeghnezha, H. R. & Faraji, A. (2016). Effect of conservation tillage systems on growth, yield and yield components of soybean. CIGR Journal. https://cigrjournal.org/index.php/Ejounral/article/view/3544
Swanson, K., Schnitkey, G., Paulson, N., Coppess, J. & Zulauf, C. (2020). Couse management: Tillage operations. Farmdocdaily. https://farmdocdaily.illinois.edu/2020/08/cost-management-tillage-operations.html
Tandang, L.L., Macyon, D.T.J., Epie, M.S. (2020). Agro-morphological characterization, evaluation, and cluster analysis of soybean (Glycine max (L.) Merrill) accessions grown under organic production system in La. Philippine Science and Technology Abstracts. https://www.stii.dost.gov.ph/images/jdownloads/pdf_files/psta/PSTA_2020_June.pdf
US-International Trade Administration. (2024). Philippines Country Commercial Guide. Official Website of the United States government. https://www.trade.gov/country-commercial-guides/philippines-agricultural-sectors
University of Minnesota Extension (n.d.). Soybean growth stages. https://extension.umn.edu/growing-soybean/soybean-growth-stages#vegetative-phase-%28table-1%29-539860
Wang, H., Wang, S., Yu, Q., Zhang, Y., Wang, R., Li, J., & Wang, X. (2020). No tillage increases soil organic carbon storage and decreases carbon dioxide emission in the crop residue-returned farming system. Journal of Environmental Management. https://doi.org/10.1016/j.jenvman.2020.110261
Wang, X. & Komatsu, S. (2017). Chapter Four - Improvement of Soybean Products Through the Response Mechanism Analysis Using Proteomic Technique.
https://doi.org/10.1016/bs.afnr.2016.12.006.
Wang, X., Zhang, M., Li, F., Liu, X., Zhang, Z., Zhang, F., Zhao, K., Yuan, R., Lamlom, S. F., Ren, H., Qui, H. & Zhang, B. (2025). Genome-Wide Association Study Reveals Key Genetic Loci Controlling Oil Content in Soybean Seeds. Agronomy. https://www.mdpi.com/2073-4395/15/8/1889n
Wuaden, C. R., Nicoloso, R. S., Barros, E. C., & Grave, R. A. (2020). Early adoption of no-till mitigates soil organic carbon and nitrogen losses due to land use change. Soil and Tillage Research, 204, 104728. https://doi.org/10.1016/j.still.2020.104728
Xu, C., Li, R., Song, W., Wu, T., Sun, S., Hu, S., Han, T., & Wu, C. (2021). Responses of branch number and yield component of soybean cultivars tested in different planting densities. Agriculture. https://doi.org/10.3390/agriculture11010069
Yang, Q., Lin, G., Lv, H., Wang, C., Yang, Y. & Liao, H. (2021). Environmental and genetic regulation of plant height in soybean. BMC Plant Biology. https://doi.org/10.1186/s12870-021-02836-7
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