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Research Articles

Physiological and growth responses of young plants of three native olive cultivars to olive waste compost

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Pages 2478-2498 | Received 09 Apr 2021, Accepted 26 Aug 2021, Published online: 31 Mar 2022

References

  • Aïachi, M., A. Mguidiche, F. Allouche, I. Zouari, F. Attia, and G. Provenzano. 2019. Water status and yield response to deficit irrigation and fertilization of three olive oil cultivars under the semi-arid conditions of Tunisia. Sustainability 11:4812. doi: https://doi.org/10.3390/su11174812.
  • Al-Imoor, H., I. Raed, H. Z. Husam, Z. Oday, and Z. Motasem. 2017. Germination of seeds grown on medium from olive mill liquid waste, olive mill pomace, and stone sludge waste. Chemistry and Materials Research 9 (10):11–14.
  • Almaliotis, D., I. Therios, and M. Karatassiou. 2004. Effect of nitrogen fertilization on growth leaf nutrient concentration and photosynthesis in three peach cultivars. Acta Horticulturae 449:36–42.
  • Altieri, R, and A. Esposito. 2008. Olive orchard amended with two experimental olive mill wastes mixtures: Effects on soil organic carbon, plant growth and yield. Bioresource Technology 99 (17):8390–3. doi: https://doi.org/10.1016/j.biortech.2008.02.048.
  • Ayoub, S., K. Al-Absi, S. Al-Shdiefat, D. Al-Majali, and D. Hijazean. 2014. Effect of olive mill wastewater land-spreading on soil properties, olive tree performance andoil quality. Scientia Horticulturae 175:160–6.
  • Bargougui, L., Z. Guergueb, M. Chaieb, and A. Mekki. 2020. Cocomposting of Olive Industry Wastes with Poultry Manure and Evaluation of the Obtained Compost Maturity. Waste and Biomass Valorization 11:6235–47.
  • Bargougui, L., Z. Guergueb, M. Chaieb, M. Braham, and A. Mekki. 2019. Agro-physiological and biochemical responses of Sorghum bicolor in soil amended by olive mill wastewater. Agricultural Water Management 212:60–7.
  • Bedbabis, S., G. Ferrara, B. Ben Rouina, and M. Boukhris. 2010. Effects of irrigation with treated wastewater on olive tree growth, yield and leaf mineral elements at short term. Scientia Horticulturae 126:345–50. doi: https://doi.org/10.1016/j.scienta.2010.07.020.
  • Ben Hamed, K., C. Magne, and C. Abdelly. 2012. Antioxidant enzyme activities as a tool to discriminate ecotypes of Crithmum maritimum L. differing in their capacity to withstand salinity. In Water Stress, ed. I. M. M. Rahman and H. Hasegawa, 166–175. London: IntechOpen.
  • Ben Hassena, A., M. Zouari, L. Trabelsi, W. Khabou, and N. Zouari. 2018. Physiological improvements of young olive tree (Olea europaea L. cv. Chetoui) under short term irrigation with treated wastewater. Agricultural Water Management 207:53–8.
  • Buchmann, C., A. Felten, B. Peikert, K. Munoz, N. Bandow, A. Dag, and G. E. Schaumann. 2015. Development of phtotoxicity and composition of soil treated with olive mill wastewater (OMW): an incubation study. Plant Soil.386:99–112.
  • Chaari, L., N. Elloumi, S. Mmseddi, K. Gargougri, B. Ben rouina, T. Mechichi, and M. Kallel. 2015. Changes in soil macronutrients after a long-term application of olive mill wastewater. Journal of Agricultural Chemistry and Environment 4:1–13.
  • Chaouch, A., L. Bargougui, M. Chaieb, B. Amar, and A. Mekki. 2019. Ecophysiologicals responses of olive trees (Olea europaea L.) hybrid varieties in soil amended with olive mill waste waters. Journal of Waste Management and Disposal 2 (206):1–10.
  • Charfi Masmoudi, C., M. Aïachi Mezghani, M. Gouia, F. Laabidi, S. Ben Raguaya, A. Ouled Amor, and M. Bousnina. 2015. Water relations of olive trees cultivated under deficit irrigation regimes. Scientia Horticulturae 125:573–8.
  • Chartzoulakis, K., G. Psarras, M. Moutsopoulou, and E. Stefanoudaki. 2010. Application of olive mill wastewater to a Cretan olive orchard: Effects on soil properties, plant performance and the environment. Agriculture, Ecosystems & Environment 138:293–8.
  • Fernández-Escobar, R. 2004. Fertilización. In El cultivo del olivo, ed. D. Barranco, R. Fernández-Escobar, and L. Rallo, 5th ed., 287–319. Madrid: Mundi-Prensa-Junta de Andalucía.
  • Fernández-Escobar, R., A. Ortiz-Urquiza, M. Prado, and H. F. Rapoport. 2008. Nitrogen status influence on olive tree flower quality and ovule longevity. Environmental and Experimental Botany 64:113–9.
  • Fernández-Escobar, R., G. Beltrán, Z. Sánchez, J. García-Novelo, M. A. Aguilera, and M. Uceda. 2006. Olive oil quality decreases with nitrogen over- fertilization. Scientia Horticulturae 41:215–9.
  • Fernández-Hernández, A., A. Roig, N. NuriaSerramiá, C. García-Ortiz Civantos, and M. A. Sánchez-Monedero. 2014. Application of compost of two-phase olive mill waste on olive grove: Effects on soil, olive fruit and olive oil quality. Waste Management 34:1139–47. doi: https://doi.org/10.1016/j.wasman.2014.03.027.
  • Gimenez, C., E. Diaz, F. Rosado, A. Garcia-Ferrer, M. Sanchez, M. A. Parra, M. Diaz, and P. Pena. 2001. Characterization of current management practices with high risk of nitrate contamination in agricultural areas of southern Spain. Acta Horticulturae 563:73–80.
  • Hachicha, S., M. Chtourou, K. Medhioub, and E. Ammar. 2006. Compost of poultry manure and olive mill wastes as an alternative fertilizer. Agronomy for Sustainable Development 26:135–42.
  • Hechmi, C., M. Tekaya, M. Ouhibi, M. Gouiaa, H. Zakhama, Z. Mahjoub, S. Laamari, H. Sfina, B. Chihaoui, D. Boujnah, et al. 2019. Effects of compost, olive mill wastewater and legume cover cropson soil characteristics, tree performance and oil quality of olive trees cv.Chemlali grown under organic farming system. Scientia Horticulturae 253:163–71.
  • Ibrahimi, K, and N. Gaddas. 2015. Soil nutrient content and olive tree nutritional status after composted olive husk application in an olive orchard of Northern Tunisia. Agriculture Biotechnoly 19 (2):708–14.
  • IOC. 2017. International Olive Council, Olivae. N°: 124.
  • Lichtenthaler, H. K, and C. Buschmann. 2001. Chlorophylls and carotenoids–Measurement and characterization by UV–vis. In Current protocols in food analyticial chemistry, ed. H. K. Lichtenthaler. New York: Wiley.
  • López-Pineiro, A., A. Albarrán, J. M. Rato Nunes, and C. Barreto. 2008. Short and medium term effects of two-phase olive mill waste application on olive grove production and soil properties under semiarid mediterranean conditions. Bioresource Technology 99:7982–7.
  • Lutts, S., J. M. Kinet, and J. Bouharmont. 1996. NaCl-induced senescence in leaves of rice (Oryza sativa L.) cultivars differing in salinity resistance. Annals Botany 78:389–98.
  • Magdich, S., W. Abid, M. Boukhris, B. Ben Rouina, and E. Ammar. 2016. Effects of long-term olive mill wastewater spreading on the physiological and biochemical responses of adult Chemlali olive trees (Olea europaea L.). Ecological Engineering 97:122–9.
  • Mechri, B., H. Cheheb, O. Boussadia, F. Attia, F. Ben Mariem, M. Braham, and M. Hammami. 2011. Effects of agronomic application of olive mill wastewater in a field of olive trees on carbohydrate profiles, chlorophyll a fluorescence and mineral nutrient content. Environmental and Experimental Botany 71:184–91.
  • Meftah, O., Z. Guergueb, M. Braham, S. Sayadi, and A. Mekki. 2019. Long term effects of olive mill wastewaters application on soil properties and phenolic compounds migration under arid climate. Agricultural Water Management 212:119–25.
  • Mekki, A., A. Aloui, Z. Guergueb, and M. Braham. 2018. Agronomic valorization of olive mill wasteswaters: Effects on Medicago sativa growth and soil characteristics. Clean Soil Air Water 46 (9):1800100.
  • Mekki, A., M. Mdhaffar, and S. Sayadi. 2014. Advance in Mediterranean soil properties following compost amendment. International Journal of Agricultural Policy and Research 2 (11):373–9. doi: https://doi.org/10.15739/IJAPR.162.
  • Mousavi, A., H. Lessani, M. Babalar, A. R. Talaei, and E. Fallahi. 2008. Influence of salinity on chlorophyll, leaf water potential, total soluble sugars, and mineral nutrients in two young olive cultivars. Journal of Plant Nutrition 31:1906–16.
  • Nasini, L., G. Gigliotti, M. A. Balduccini, E. Federici, G. Cenci, and P. Proietti. 2013. Effects of solid olive-mill waste amendment on soil fertility and olive (Olea europea L.) tree activity. Agriculture, Ecosystems & Environment 164:292–7. doi: https://doi.org/10.1016/j.agee.2012.10.006.
  • Ordóñez-Fernández, R., M. A. Repullo-Ruibérriz de Torres, J. Márquez-García, M. Moreno García, and R. M. Carbonell-Bojollo. 2018. Legumes used as cover crops to reduce fertilisation problems improving soil nitrate in an organic orchard. European Journal of Agronomy 95:1–13.
  • Pauwels, J. M. E. Van Ranst, M. Verloo, and A. Mvondo Ze. 1992. Manuel de Laboratoire de Pédologie – méthodes d’analyses de sols et de plantes; equipment et gestion des stocks de verrerie et de produits chimiques. Publications Agricoles nr. 28, A.G.C.D., Bruxelles, Belgium.
  • Pérez-Harguindeguy, N., S. Dı´az, E. Garnier, S. Lavorel, H. Poorter, P. Jaureguiberry, A. Bret-Harte, W. K. Cornwell, J. M. Craine, D. E. Gurvich, et al. 2013. New handbook for standardised measurement of plant functional traits worldwide. Australian Journal of Botany 64:715–716. doi: https://doi.org/10.1071/BT12225.
  • Proietti, P., E. Federici, L. Fidati, S. Scargetta, L. Massaccesi, and L. Nasini. 2015. Effects of amendment with oil millwaste and its derived-compost on soil chemical and microbiological characteristics and olive (Oleaeuropaea L.) productivity. Agriculture, Ecosystems & Environment 207:51–60.
  • Proietti, P., L. Nasini, D. DelBuono, R. D’Amato, E. Tesdeschini, and D. Businelli. 2013. Selenium protects olive (Olea europaea L.) from drought stress. Scientia Horticulturae 164:165–71. doi: https://doi.org/10.1016/j.agee.2015.03.028.
  • Regni, L., L. Nasini, I. Ilarioni, A. Brunori, L. Massaccesi, A. Agnelli, and P. Proietti. 2016. Long term amendment with fresh and composted solid olive mill waste on olive grove affects carbon sequestration by prunings, fruits, and soil. Frontiers in Plant Science. 7:20–4.
  • Tekaya, M., S. El-Gharbi, B. Mechri, H. Chehab, A. Amani Bchir, I. Chraief, M. Ayachi, D. Boujnah, F. Attia, and M. Hammami. 2016. Improving performance of olive trees by the enhancement of key physiological parameters of olive leaves in response to foliar fertilization. Acta Physiologiae Plantarum 38:101–9.

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