全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Varietal and Management-Based Modulation of Pests, Diseases, Weeds, and Yield Traits in Tomato Production and Productivity

DOI: 10.4236/ae.2025.134024, PP. 360-381

Keywords: Pests, Diseases, Management, Agronomic practices, Tomato Production and Productivity

Full-Text   Cite this paper   Add to My Lib

Abstract:

Tomato (Solanum lycopersicum L.) plays a vital nutritional and economic role in Sierra Leone; however, its production is hindered by pest infestations, disease outbreaks, weed competition, and suboptimal agronomic practices. This study assessed the impact of two tomato varieties which are Heirloom (improved) and Nornro (local) under four agronomic management practices (AMPs), combining organic and inorganic approaches, over a two-year field trial (2022-2023) at Njala University. The experiment followed a 2 × 4 factorial design in a Randomized Complete Block Design (RCBD) with three replications. AMP 1, which included chicken manure, mulching, and neem biopesticide, significantly improved plant height, branch number, truss formation, and fruit yield (up to 5.3 t/ha), outperforming both the inorganic treatment (AMP 3: 4.6 t/ha) and the control (AMP 4: 2.5 t/ha). AMP 3, involving NPK fertilizer and chemical pesticides, was most potent in reducing pest populations (whiteflies, aphids, and leaf miners), disease incidence (tomato mosaic and bacterial leaf blight), and weed infestation. Conversely, AMP 1 also effectively enhanced soil health and economic returns, producing the highest net revenue (SLL 380,000/ha). The local Nornro variety demonstrated superior pest and disease resistance, while the Heirloom variety exhibited better vegetative growth. Weed surveys revealed diverse species dominated by Poaceae and Fabaceae families, with Imperata cylindrica and Panicum maximum being most prevalent. Overall, integrated organic and inorganic practices significantly influenced tomato productivity, weed suppression, and profitability. The findings advocate for the adoption of AMP 1 as a sustainable and eco-friendly strategy for enhanced tomato cultivation in low-input agricultural systems in Sierra Leone.

References

[1]  Food and Agriculture Organization (2010) Tomato Production Statistics.
http://www.fao.org
[2]  Latha, M., Thamburaj, S. and Singh, N. (2002) Integrated Nutrient Management in Tomato. International Journal of Agricultural Sciences, 7, 123-135.
[3]  Adediran, J.A., Taiwo, L.B., Akande, M.O., Sobulo, R.A. and Idowu, O.J. (2003) Application of Organic and Inorganic Fertilizer for Sustainable Maize and Cowpea Yields in Nigeria. Journal of Sustainable Agriculture, 21, 45-61.
[4]  Alam, M.K., Bell, R.W., Haque, M.E., Islam, M.R. and Kader, M.A. (2007) Soil Amendments for Sustainable Agriculture in the Drylands. Journal of Environmental Science and Health, Part B, 42, 639-649.
[5]  Sreenivasa, M.N., Naik, N. and Bhat, S.N. (2010) Organic Farming for Sustainable Agriculture. International Journal of Plant Production, 4, 201-218.
[6]  Rahman, M.H., Haque, M.S., Karim, M.A. and Ahmed, M. (1996) Effect of Organic and Inorganic Fertilizers on Yield and Nutrient Uptake by Tomato. Journal of Agricultural Science and Technology, 17, 323-336.
[7]  Shaheed, I. (1997) Alternative Organic Amendments for Tomato Production. Journal of Crop Science, 12, 45-52.
[8]  Manral, V. and Saxena, M. (2003) Integrated Nutrient Management for Sustainable Crop Production. Journal of Soil and Water Conservation, 58, 45-51.
[9]  Ghosh, S., Wilson, B., Ghoshal, S., Senapati, N. and Mandal, B. (2004) Integrated Nutrient Management and Its Effects on Soil Quality and Productivity. Journal of Sustainable Agriculture, 23, 63-79.
[10]  Janvier, C., Villeneuve, F., Alabouvette, C., Edel-Hermann, V., Mateille, T. and Steinberg, C. (2007) Soil Health through Soil Disease Suppression: Which Strategy from Descriptors to Indicators? Soil Biology and Biochemistry, 39, 1-23.
https://doi.org/10.1016/j.soilbio.2006.07.001
[11]  Holopainen, J. (2004) Multiple Functions of Inducible Plant Volatiles. Trends in Plant Science, 9, 529-533.
https://doi.org/10.1016/j.tplants.2004.09.006
[12]  Ana, U.R. and Sugha, S.K. (2007) Role of Cultural Practices in the Management of Colocasia Blight. Plant Disease Research, 22, 30-33.
[13]  Brown, P.D. and Morra, M.J. (1997) Control of Soil-Borne Plant Pests Using Glucosinolate-Containing Plants. In: Advances in Agronomy, Elsevier, 167-231.
https://doi.org/10.1016/s0065-2113(08)60664-1
[14]  Gonzales, A. and Canto-Saenz, M.A. (1993) Comparison of Five Organic Amendments for the Control of Globodera pallida in Microplots in Peru. Nematropica, 23, 133-139.
[15]  Agustin, F.T. (2007) Evaluating the Biofumigation Potentials of Various Brassica Species for the Control of Ralstonia solanacearum (E.F. Smith) Yabuuchi et al. Affecting Potatoes. Undergraduate Thesis, Benguet State University. digilib.bsu.edu.ph/greenstone/collect/ungra/index/assoc/HASHf237.dir/doc.pdf
[16]  Gergon, E.B., Gapasin, R., Opina, O.S. and Halbrendt, J.M. (2000) Evaluation of Rice Hull Burning for Management of Rice Root-Knot Nematode in Rice-Onion Cropping System. Proceedings of the 31st Anniversary Scientific Convention of the Pest Management Council of the Philippines, Baguio City, 3-5 May 2000, 58-59.
[17]  Brady, N.C. and Weil, R.R. (2016) The Nature and Properties of Soils. 15th Edition, Pearson.
[18]  Song, Z., Gao, H., Zhu, P., Peng, C., Deng, A., Zheng, C., et al. (2015) Organic Amendments Increase Corn Yield by Enhancing Soil Resilience to Climate Change. The Crop Journal, 3, 110-117.
https://doi.org/10.1016/j.cj.2015.01.004
[19]  Obi, M.E. and Ebo, P.O. (1995) The Effects of Different Management Practices on the Physical Properties of a Sandy Loam Soil in Southern Nigeria. Soil & Tillage Re-search, 33, 5-14.
https://doi.org/10.1016/0167-1987(94)00433-C
[20]  Bernados, L.C., Espineli, J.P., Anarna, J.A. and Aggangan, N.S. (2024) Increasing Tomato Productivity through Integrated Nutrient Sources and Inoculation with Arbuscular Mycorrhizal Fungi and Azospirillum Spp. Horticulturae, 10, Article No. 1056.
https://doi.org/10.3390/horticulturae10101056
[21]  Minchev, Z., Ramírez-Serrano, B., Dejana, L., Lee Díaz, A.S., Zitlalpopoca-Hernandez, G., Orine, D., et al. (2024) Beneficial Soil Fungi Enhance Tomato Crop Productivity and Resistance to the Leaf-Mining Pest Tuta Absoluta in Agronomic Conditions. Agronomy for Sustainable Development, 44, Article No. 43.
https://doi.org/10.1007/s13593-024-00991-3
[22]  Abbas, M., Adil, M., Ehtisham-ul-Haque, S., Munir, B., Yameen, M., Ghaffar, A., Shar, G.A., Asif Tahir, M. and Iqbal, M. (2020) Biochemical and Physiological Responses of Oryza sativa to Pesticide Exposure. Pesticide Biochemistry and Physiology, 166, Article ID: 104587.
[23]  Verma, A., Kumar, S. and Pandey, A.K. (2021) Neem Extract as a Potent Source for Enhancing Crop Protection from Insect Pests and Diseases. Plant Protection Science, 57, 1-12.
https://doi.org/10.17221/113/2020-PPS
[24]  Jones, J.B., Zitter, T.A., Momol, T.M. and Miller, S.A. (2014) Diseases of Tomato. 2nd Edition, Elsevier.
[25]  Norsworthy, J.K., Brandenberger, L., Burgos, N.R. and Riley, M. (2005) Weed Suppression in Vigna unguiculata with a Spring-Seeded Brassicaceae Green Manure. Crop Protection, 24, 441-447.
[26]  Muoni, T., Rusinamhodzi, L. and Thierfelder, C. (2013) Use of Herbicides in Reducing Weed Density over Time. African Journal of Agricultural Research, 8, 873-879.
https://doi.org/10.5897/AJAR12.2512
[27]  Quee, A.K., Quee, D.D. and Quee, J.K. (2020) Weed Control Options in Tomato Cultivation: A Two-Year Evaluation. Crop Protection, 129, Article ID: 105072.
[28]  Ghorbani, R., Koocheki, A., Jahan, M. and Asadi, G.A. (2008) Impact of Organic Amendments and Compost Extracts on Tomato Production and Storability in Agroecological Systems. Agronomy for Sustainable Development, 28, 307-311.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133