دورية أكاديمية

Nutrient enhancement potentials of moringa (Moringa oleifera), neem (Azadirachta indica), and pawpaw (Carica papaya) fortified composts in contaminated soils.

التفاصيل البيبلوغرافية
العنوان: Nutrient enhancement potentials of moringa (Moringa oleifera), neem (Azadirachta indica), and pawpaw (Carica papaya) fortified composts in contaminated soils.
المؤلفون: Taiwo AM; Department of Environmental Management and Toxicology, Federal University of Agriculture, Ogun State, PMB 2240, Abeokuta, Nigeria. taiwoademat@gmail.com., Oladotun OR; Department of Environmental Management and Toxicology, Federal University of Agriculture, Ogun State, PMB 2240, Abeokuta, Nigeria., Gbadebo AM; Department of Geology, Federal University of Agriculture, PMB 2240, Abeokuta, Ogun State, Nigeria., Alegbeleye WO; Department of Aquaculture and Fisheries Management, Federal University of Agriculture, PMB 2240, Abeokuta, Ogun State, Nigeria., Hassan TM; Federal Institute of Industrial Research, Oshodi (FIIRO), Ikeja, Lagos State, Nigeria.
المصدر: Environmental monitoring and assessment [Environ Monit Assess] 2022 Mar 02; Vol. 194 (3), pp. 237. Date of Electronic Publication: 2022 Mar 02.
نوع المنشور: Journal Article
اللغة: English
بيانات الدورية: Publisher: Springer Country of Publication: Netherlands NLM ID: 8508350 Publication Model: Electronic Cited Medium: Internet ISSN: 1573-2959 (Electronic) Linking ISSN: 01676369 NLM ISO Abbreviation: Environ Monit Assess Subsets: MEDLINE
أسماء مطبوعة: Publication: 1998- : Dordrecht : Springer
Original Publication: Dordrecht, Holland ; Boston : D. Reidel Pub. Co., c1981-
مواضيع طبية MeSH: Asimina* , Azadirachta* , Carica* , Composting* , Moringa* , Moringa oleifera*, Environmental Monitoring ; Manure ; Nutrients ; Soil/chemistry
مستخلص: This study assessed the nutrient enhancement potentials of moringa (Moringa oleifera), neem (Azadirachta indica), and pawpaw (Carica papaya) fortified composts in contaminated soils. The composts were formulated from poultry manure; leaves of moringa, neem, and pawpaw; and sawdust for a period of 8 weeks. Contaminated soil samples were collected from a dumpsite in Abeokuta, Ogun State. The contaminated soils were treated with the stabilized composts for a period of 4 weeks. Castor oil plants were introduced to assess the nutrient quality of the composts. Soil and compost parameters (pH, electrical conductivity (EC), organic carbon (OC), total nitrogen (TN), C/N ratio, P, K, Na, Mg, and Ca) were determined using the standard procedures. Data collected were evaluated for simple descriptive and inferential statistics. Results showed non-significance (p > 0.05) of C/N ratios that ranged between 12.75 ± 2.43 and 12.96 ± 1.49. The pH values of moringa- and neem-fortified composts were slightly acidic, while the pawpaw-formulated compost was slightly alkaline. The levels of TN and OC were three times higher in moringa- and pawpaw-fortified composts than in the neem compost. Introduction of the composts to the contaminated soils decreased the soil pH but increased the nutrient quality parameters such as TN (33-50%), OC (56-77%), P (7-20%), Na (89-91%), K (12-25%), and Mg (10-13%). The three compost types increased the physiological properties of the castor oil plants. The study indicated the promising potentials of the three composts for nutrient enhancement of soil.
(© 2022. The Author(s), under exclusive licence to Springer Nature Switzerland AG.)
التعليقات: Erratum in: Environ Monit Assess. 2022 Aug 17;194(10):681. (PMID: 35976576)
References: Adekiya, A. O., Agbede, T. M., Aboyeji, C. M., Dunsin, O., & Ugbe, J. O. (2019). Green manures and NPK fertilizer effects on soil properties, growth, yield, mineral and vitamin C composition of okra (Abelmoschus esculentus (L.) Moench). Journal of the Saudi Society of Agricultural Sciences, 18(2), 218–223.
Agbede, T. M., Adekiya, A. O., Ale, M. O., Eifediyi, E. K., & Olatunji, C. A. (2018). Soil properties, growth, fruit yield, mineral, lycopene and vitamin C contents of tomato (Lycopersicon esculentum mill) grown with green manures and NPK fertilizer. Agriculturae Conspectus Scientificus, 83(4), 291–297.
Alzohairy, M. A. (2016). Therapeutics role of Azadirachta indica (Neem) and their active constituents in diseases prevention and treatment. Evidence-Based Complementary & Alternative Medicine, 2016.
AOAC. (2000). Official Methods of Analysis, 17th edn. The Association Office Agricultural Chemists, Virginia.
Aya El Zein, M. S., Seif, H., & Gooda, E. (2015). Moisture content and thermal balance during composting of fish, banana mulch & municipal solid wastes. European Scientific Journal, 11(5), 169–187.
Bernal, M. P., Alburquerque, J., & Moral, R. (2009). Composting of animal manures andchemical criteria for compost maturity assessment. A Review Bioresource Technology, 100, 5444–5453. (PMID: 10.1016/j.biortech.2008.11.027)
Bhabananda, B., Qi, F., Biswas, F. K., Wijayawardena, A., Khan, M. A. I., & Naidu, R. (2008). The fate of chemical pollutants with soil properties and processes in the climate change paradigm—A review. Soil Systems, 2(3), 51.
Chaudhari, P. R., Ahire, D. V., & Ahire, V. D. (2012). Correlation between physico-chemical properties and available nutrients in sandy loam soils of Haridwar. Journal of Chemical, Biological & Physical Sciences (JCBPS), 2(3), 1493.
Chen, L., Moore, A., & de Haro-Marti, M. D. (2012). Dairy compost production and use in Idaho: On-farm composting management, 1190. University of Idaho Extension Publication.
Elmanda, A. Y. (2014). Papaya leaves extract as a catalyst for waste composting. APEC Youth Scientist Journal, 6(1), 38–44.
El-Sharkawi, H. M. (2012). Effect of nitrogen sources on microbial biomass nitrogen under different soil types. International Scholarly Research Notices, 2012.
Gajalakshmi, S., & Abbasi, S. A. (2004). Neem leaves as a source of fertilizer-cum-pesticide vermicompost. Bioresource Technology, 92(3), 291–296. (PMID: 10.1016/j.biortech.2003.09.012)
Haouvang, L. C., Albert, N., Martin, Y., & Mbaiguinam, M. (2017). Growth response of Moringa oleifera Lam. as affected by various amounts of compost under greenhouse conditions. Annals of Agricultural Sciences, 62(2), 221–226.
Heyman, H., Bassuk, N., Bonhotal, J., & Walter, T. (2019). Compost quality recommendations for remediating urban soils. International Journal of Environmental Research & Public Health, 16(17), 3191. (PMID: 10.3390/ijerph16173191)
Joyce, J. (2010). Conditioning biochar for application to soils. The Biochar Revolution.
Jurowski, K., Fołta, M., Tatar, B., Berkoz, M., & Krośniak, M. (2021a). The health risk assessment of essential elemental impurities (Cu, Mn and Zn) through the dermal exposure of herbal ointment extracted from marjoram herb (Majoranae herbae extractum). Biological Trace Element Research, 1–7.
Jurowski, K., Fołta, M., Tatar, B., & Krośniak, M. (2021b). The comprehensive toxicological assessment of total chromium impurities in traditional herbal medicinal product with Thymi herba (Thymus vulgaris L. and Thymus zygis L.) available in pharmacies in Poland. Biological Trace Element Research, 1–6.
Jurowski, K., Fołta, M., Tatar, B., & Krośniak, M. (2021c). The level of cadmium impurities in traditional herbal medicinal products with Plantago lanceolata L., folium (Ribwort plantain leaves) available in Polish pharmacies—comprehensive toxicological risk assessment including regulatory point of view and ICH Q3D Elemental Impurities Guideline. Biological Trace Element Research, 1–7.
Jurowski, K., Fołta, M., Tatar, B., Berkoz, M., & Krośniak, M. (2022). The toxicological risk assessment of lead and cadmium in Valeriana officinalis L., radix (Valerian root) as herbal medicinal product for the relief of mild nervous tension and sleep disorders available in Polish pharmacies. Biological Trace Element Research, 200, 904–909. (PMID: 10.1007/s12011-021-02691-5)
Masclaux-Daubresse, C., Daniel-Vedele, F., Dechorgnat, J., Chardon, F., Gaufichon, L., & Suzuki, A. (2010). Nitrogen uptake, assimilation and remobilization in plants: Challenges for sustainable and productive agriculture. Annals of Botany, 105(7), 1141–1157. (PMID: 10.1093/aob/mcq028)
Muncke, J., Andersson, A. M., Backhaus, T., Boucher, J. M., Almroth, B. C., Castillo, A. C., Chevrier, J., Demeneix, B. A., Emmanuel, J. A., Fini, J. B., & Gee, D. (2020). Impacts of food contact chemicals on human health: A consensus statement. Environmental Health, 19(1), 1–12. (PMID: 10.1186/s12940-020-0572-5)
Mylavarapu, R. S., & Kennelley, E. D. (2002). UF/IFAS extension soil testing laboratory (ESTL) analytical procedures and training manual. EDIS, 2002(5).
Oshunsanya, S. (Ed.). (2019). Soil pH for nutrient availability and crop performance. BoD–Books on Demand.
Otsuki, N., Dang, N. H., Kumagai, E., Kondo, A., Iwata, S., & Morimoto, C. (2010). Aqueous extract of Carica papaya leaves exhibits anti-tumor activity and immunomodulatory effects. Journal of Ethnopharmacology, 127(3), 760–767. (PMID: 10.1016/j.jep.2009.11.024)
Ozobia, A. P. (2014). Comparative assessment of effect of Moringa extracts, NPK fertilizer and poultry manure on soil properties and growth performance of Solaniummenlongina in Abuja, North Central Region of Nigeria. Journal of Agricultural & Crop Research, 2(5), 88–93.
Parmar, D., & Shah, K. (2014). Formation of composting from food waste & neem plant debris. Available at SSRN 2460794.  https://doi.org/10.2139/ssrn.2460794.
Popoola, O. I., & Adenuga, O. A. (2019). Determination of leachate curtailment capacity of selected dumpsites in Ogun State southwestern Nigeria using integrated geophysical methods. Scientific African, 6, e00208.
Roig, N., Sierra, J., Martí, E., Nadal, M., Schuhmacher, M., & Domingo, J. L. (2012). Long-term amendment of Spanish soils with sewage sludge: Effects on soil functioning. Agriculture, Ecosystems & Environment, 158, 41–48. (PMID: 10.1016/j.agee.2012.05.016)
Santana, L. F., Inada, A. C., Espirito Santo, B. L. S. D., Filiú, W. F., Pott, A., Alves, F. M., Guimarães, R. D. C. A., Freitas, K. D. C., & Hiane, P. A. (2019). Nutraceutical potential of Carica papaya in metabolic syndrome. Nutrients, 11(7), 1608. (PMID: 10.3390/nu11071608)
Shrinithivihahshini, N. D. (2009). Composting of papaya wastes: An aaerobic composting trial using different amendments. ESAIJ, 4(5), 281–285.
Smith, B. A., Eudoxie, G., Stein, R., Ramnarine, R., & Raghavan, V. (2020). Effect of neem leaf inclusion rates on compost physico-chemical, thermal and spectroscopic stability. Waste Management, 114, 136–147.
Sullivan, D. M., Bary, A. I., Miller, R. O., & Brewer, L. J. (2018). Interpreting compost analyses. Oregon State University Extension Service. https://catalog.extension.oregonstate.edu/sites/catalog/files/project/pdf/em9217.pdf . Accessed: 19/02/2020.
Taiwo, A. M. (2011). Composting as A Sustainable Waste Management Technique in Developing. Journal of Environmental Science and Technology, 4(2), 93–102.
Taiwo, A. M., Bello, A., Towolawi, A. T., Oyedepo, J. A., & Khaniabadi, Y. O. (2019). Remediation of Dumpsite Leachate Contaminants by Coagulation and Complexation. The Journal of Solid Waste Technology and Management, 45(3), 380–388.
Taiwo, A. M., Gbadebo, A. M., Oyedepo, J. A., Ojekunle, Z. O., Alo, O. M., Oyeniran, A. A., Onalaja, O. J., Ogunjimi, D., & Taiwo, O. T. (2016). Bioremediation of industrially contaminated soil using compost and plant technology. Journal of Hazardous Materials, 304, 166–172. (PMID: 10.1016/j.jhazmat.2015.10.061)
Taiwo, A. M., Harrison, R. M., & Shi, Z. (2014). A review of receptor modelling of industrially emitted particulate matter. Atmospheric Environment, 97, 109–120. (PMID: 10.1016/j.atmosenv.2014.07.051)
Taiwo, A. M., Musa, M. O., Oguntoke, O., Afolabi, T. A., Sadiq, A. Y., Akanji, M. A., & Shehu, M. R. (2020). Spatial distribution, pollution index, receptor modelling and health risk assessment of metals in road dust from Lagos metropolis, Southwestern Nigeria. Environmental Advances, 2, 100012.
Thorpe, A., & Harrison, R. M. (2008). Sources and properties of non-exhaust particulate matter from road traffic: A review. Science of the Total Environment, 400(1–3), 270–282. (PMID: 10.1016/j.scitotenv.2008.06.007)
Wu, G., Kechavarzi, C., Li, X., Sui, H., Pollard, S. J., & Coulon, F. (2013). Influence of mature compost amendment on total and bioavailable polycyclic aromatic hydrocarbons in contaminated soils. Chemosphere, 90(8), 2240–2246. (PMID: 10.1016/j.chemosphere.2012.10.003)
Waszkielis, K. M., Wronowski, R., Chlebus, W., Białobrzewski, I., Dach, J., Pilarski, K., & Janczak, D. (2013). The effect of temperature, composition and phase of the composting process on the thermal conductivity of the substrate. Ecological Engineering, 61, 354–357.
فهرسة مساهمة: Keywords: Compost types; Contaminated soil; Nutrient enrichment; Plant; Soil properties
المشرفين على المادة: 0 (Manure)
0 (Soil)
تواريخ الأحداث: Date Created: 20220302 Date Completed: 20220304 Latest Revision: 20220817
رمز التحديث: 20240628
DOI: 10.1007/s10661-022-09801-3
PMID: 35235049
قاعدة البيانات: MEDLINE
الوصف
تدمد:1573-2959
DOI:10.1007/s10661-022-09801-3