Separate and combined effects of silicon and potassium on growth and nitrogen uptake in okra plants as influenced by salinity of irrigation water

Автор: Kurdali F., Al-chammaa M., Al-ain F.

Журнал: Журнал стресс-физиологии и биохимии @jspb

Статья в выпуске: 4 т.18, 2022 года.

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The aim of this pot experiment was to determine the impact of foliar spraying of silicic acid (Si) with or without potassium fertilizer amendment (K) on dry matter (DM), nitrogen uptake (TN), efficient use of N fertilizer (NUE) and pod yield of okra plants ( Abelmoschus esculentus L.) as influenced by salinity in the irrigation water (Salt) using 15N isotope. Results showed that salt stress reduced growth and N uptake by okra plants. Si and/or K applications could reduce the negative effect of salinity to a certain extent depending on the way and the type of applied materials (i.e., separate or combined applications of Si and K). Solely Si application improved okra (DM) and N-nutrition (TN and NUE) under both saline (Salt+) and non-saline conditions (Salt-). This improvement was more pronounced in the former than the latter. However, Si+ did not have significant effect on DM and fresh weights of pods as compared with the control (Si-). Solely applied K fertilizer increased the growth, N uptake and ultimately pod yields. Moreover, the combined use of Si and K could significantly enhance total DM(TDM), TN, amounts of N derived from fertilizer (Ndff), soil (Ndfs) and %NUE in the entire okra plants as well as pod yield. In conclusion, solely applied K or in combination with Si could be considered as an effective agricultural practice to reduce salt stress in okra plants and increase the growth and ultimately pod yields.

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Silicon, potassium, okra, salinity, 15n

Короткий адрес: https://sciup.org/143179360

IDR: 143179360

Список литературы Separate and combined effects of silicon and potassium on growth and nitrogen uptake in okra plants as influenced by salinity of irrigation water

  • Abbas, T., Balal, R.M., Shahid, M.A., Pervez, M.A., Ayyub, C.M, Aqueel, M.A and Javaid, M.M (2015). Silicon-induced alleviation of NaCl toxicity in okra (Abelmoschus esculentus) is associated with enhanced photosynthesis, osmo-protectants and antioxidant metabolism. Acta Physiol Plant37:1-15. https://doi.org/10.1007/s11738-014-1768-5
  • Ahanger, M.A., Tomar, N.S., Tittal, M., Argal, S. and Agarwal, R.M. (2017). Plant growth under water/salt stress: ROS production; antioxidants and significance of added potassium under such conditions. Physiol Mol Biol Plants23(4):731-744. DOI 10.1007/s12298-017-0462-7
  • Ashraf, M., Rahmatullah, Ahmad, R., Afza,l M., Tahir, M.A., Kanwal, S. and Maqsood, M.A. (2009). Potassium and silicon improve yield and juice quality in sugarcane (Saccharum officinarum L.) under salt stress. J Agron Crop Sci195: 284- 291. https://doi.org/10.1111/j.1439-037X.2009.00364.x
  • Ayers, R.S. and Westcot D.W. (1989) "Water quality for agriculture." FAO Irrigation and Drainage Paper No. 29, Rome. Ayub, Q., Khan, S.M., Khan, A., Hussain, I., Ahmad, Z. and Khan, M.A. (2018). Effect of gibberellic acid and potassium silicate on physiological growth of Okra (Abelmoschus esculentus L.) under salinity stress. Pure &Applied Biol 7(1): 8-19. http://dx.doi.org/10.19045/bspab.2018.70002
  • Azeem, A., Wu, Y., Xing, D., Javed, Q. and Ullah, I (2017) Photosynthetic response of two okra cultivars under salt stress and re-watering. J Plant Inter12(1): 67-77. https://doi.org/10.1080/17429145.2017.1279356
  • Barreto, R.F., Cruz FJR, Gaion, L.A., Prado, R.M. and Carvalho, R.F. (2018). Accompanying ions of ammonium sources and nitrate: ammonium ratios in tomato plants. Acta Agriculturae Scandinavica, Section B - Soil Plant Sci 181:1-6. doi:10.1002/jpln.201700413.
  • Bresler, E. McNeal, B.L. and Carter, D.L. (1982). Saline and Sodic Soils (Principles - Dynamics - Modeling). 236 pp. Springer-Verlag, Berlin - Heidelberg - New York.
  • Bybordi, A. (2015). Influence of exogenous application of silicon and potassium on physiological responses, yield, and yield components of salt-stressed wheat. Commun Soil Sci & Plant Anal 46: 109-122. https://doi.org/10.1080/00103624.2014.956936
  • Congreves ,K.A., Otchere, O., Ferland, D., Farzadfar, S., Williams, S. and Arcand, M.M. (2021). Nitrogen use efficiency definitions of today and tomorrow. Front Plant Sci12:637108.https:// doi. 10.3389/fpls.2021.637108.
  • dos Santos Sarah ,M.M., de Mello Prado, R., de Souza Júnior, J.P., Teixeira, G.C.M., dos Santos Duarte, J.C. and de Medeiros, R.L.S. (2021). Silicon supplied via foliar application and root to attenuate potassium deficiency in common bean plants. Sci Rep 11(1) 19690. https://doi.org/10.1038/s41598-021-99194-Z
  • El-Ramady, H., Alshaal, T., Elhawat, N., Ghazi, A., Elsakhawy, T., El-Dein, O.A., El-Nahrawy, S., Elmahrouk, M., Abdalla, N., Domokos-Szabolcsy, É. and Schnug, E. (2018). Plant nutrients and their roles under saline soil conditions. In: Hasanuzzaman M., Fujita M., Oku H., Nahar K., Hawrylak-Nowak B. (eds) Plant Nutrients and Abiotic Stress Tolerance. Springer, Singapore. pp 297-324. doi: 10.1007/978-981-10-9044-8_13
  • Eneji, A.E., Inanaga, S., Muranaka, S., Li J., Hattori, T., An, P., Tsuji, W. (2008). Growth and nutrient use in four grasses under drought stress as mediated by silicon fertilizers. J Plant Nutr 31:355-365. https://doi.org/10.1080/01904160801894913
  • Firoz, Z.A. (2009). Impact of nitrogen and phosphorus on the growth and yield of okra [Abelmoschus esculentus (L.) Moench] in hill slope condition. Bangladesh J. Agri Res 34(4):713-722. ISSN 02587122.
  • Garg, N and Chandel, S. (2011). Effect of mycorrhizal inoculation on growth, nitrogen fixation, and nutrient uptake in Cicer arietinum (L.) under salt stress. Turk J Agric For 35: 205-214. doi:10.3906/tar-0908-12
  • Gayathri, U.H.N. and Seran, T.H. (2020). Okra (Abelmoschus esculentus L.) yield influenced by Albizia leaf mould and banana peel with half dosage of NP chemical fertilizers. Bangladesh J Sci Ind Res 55(4), 273-282. doi: 10.3329/bjsir.v55i4.50966
  • Guntzer, F., Keller, C. and Meunier, J.D. (2012). Benefits of plant silicon for crops: a review. Agron Sustain Develop. 32:201-213. doi 10.1007/s13593-011-0039-8
  • Hasanuzzaman, M., Bhuyan, M., Nahar, K., Hossain, M., Mahmud, J.A., Hossen, M., Masud, A.A.C. and Fujita, M. (2018). Potassium: a vital regulator of plant responses and tolerance to abiotic stresses. Agronomy 8(3), 31; https://doi.org/10.3390/agronomy8030031
  • Ifediora, N.H., Edeoga, H.O. and Omosun, G. (2014). Effects of Salinity on the Growth and Viscosity of Fruits of Okra (Abelmoschus esculentus L.). Inter J Current Agri Res 1(7): 081-084.
  • Isayenkov SV and Maathuis FJM (2019) Plant Salinity Stress: Many Unanswered Questions. Remain Front Plant Sci 10:80. doi: 10.3389/fpls.2019.00080.
  • Junior, G., Prado, R.D., Campos, C.N., Agostinho, F.B., Silva, S.L., Santos, L.C. and González, L.C. (2019). Silicon mitigates ammonium toxicity in yellow passion fruit seedlings. Chilean J. of Agricul. Res. 79: 425-434. doi:10.4067/S0718-58392019000300425
  • Khan, M.M.H., Akand, M.H., Rahman, M.M., Islam, M.M. and Ahmed, B. (2019). Effect of different levels of nitrogen and potassium on the growth and yield of okra. Int. J. Appl. Res. 5 : 101-105.
  • Kumar, D.S., Tony D.E., Kumar A.P, Kumar K.A., Rao D.B.S. and Nadendla R. (2013).A Review on: Abelmoschus Esculentus (Okra). Int Res J Pharm. App Sci 3(4):129-132
  • Kurdali, F. and Al-Chammaa, M. (2013). Growth, carbon isotope discrimination and nitrogen uptake in silicon and/or potassium fed barley grown under two watering regimes. J. Stress Physiol. & Biochem. 9: 14-27.
  • Kurdali, F., Al-Chammaa M. and Mouasess A. (2013.) Growth and nitrogen fixation in silicon and/or potassium fed chickpeas grown under drought and well watered conditions. J Stress Physiol. & Biochem 9:385-406.
  • Kurdali F., Al-Chammaa, M., and Al-Ain, F. (2019). Growth and N2-fixation in saline and/or water stressed Sesbania aculeate plants in response to silicon application. Silicon 10:1-8. doi:10.1007/s12633-018-9884-2.
  • Liang, Y., Sun, W., Zhu, Y.G. and Christie, P. (2007). Mechanisms of silicon-mediated alleviation of abiotic stresses in higher plants: A review. Environ Poll 147(2). 422-428. https://doi.org/10.1016/j.envpol.2006.06.008
  • Ma, J.F. (2004).Role of Silicon in enhancing the resistance of plants to biotic and abiotic stresses. Soil Sci & Plant Nutr50(1): 11-18. doi: 10.1080/00380768.2004.10408447
  • Maas, E.V. and Hoffman, G.J. (1977). "Crop salt tolerance - Current assessment." J Irrig & Drain Div. 103IRZ, 115-134.
  • Mali M. and Aery N.C. (2008). Influence of silicon on growth, relative water contents and uptake of silicon, calcium and potassium in wheat grown in nutrient solution. J Plant Nutr31:1867-1876. https://doi.org/10.1080/01904160802402666
  • Mastalerczuk, G., Borawska-Jarmutowicz, B., Dqbrowski, P., Szara, E., Perzanowska, A. and Wróbel, B. (2020).Can the application the silicon improve the productivity and nutritional value of grass-clover sward in conditions of rainfall shortage in organic management? Agronomy10 (7): 1-14. doi:10.3390/agronomy10071007.
  • Mehta, S., Gogna, M., Singh, B., Patra, A., Singh, I.K. and Sing, A. (2020) Silicon: A plant nutritional "nonentity" for mitigating abiotic stresses. In: Giri B., Sharma M.P. (eds) Plant Stress Biology. Springer, Singapore. https://doi.org/10.1007/978-981-15-9380-2_2
  • Muhammad Zia-ur-Rehman, Khalid, H., Akmal, F., Waqar, M., Rizwan, M., Qayyum, F and Nadeem, M. (2017). Silicon and antioxidant defense system against abiotic stresses in plants: An Overview. In:
  • Tripathi, D.K., Singh, V.P., Ahmad,.P, Chauhan, D. K., and Prasad, S.M.: Silicon in plants: Advances and future prospects(Chapter 17). Boca Raton, F.L. : CRC Press, Taylor & Francis Group S publisher 321- 342. doi: 10.1201/978131536931018
  • Omotos,o S.O. and Johnson, O.Y. (2005). Growth and yield of two varieties of okra (Abelmoschus esculentus (L). Moench) as affected by potassium fertilizer sources. J Biol Agricul & Healthcare 5 (8): 98-104.
  • Pontigo, S., Larama ,G., Parra-Almuna, L, Nunes-Nesi, A., de la Luz Mora, M. and Cartes, P. (2021).Physiological and molecular insights involved in silicon uptake and transport in ryegrass. Plant Physiol Biochem 163, 308-316.
  • Redd,y M.T., Haribabu, K., Ganesh, M., Reddy, K.C .and Begum, H. (2012). Genetic divergence analysis of indigenous and exotic collections of okra [Abelmoschus esculentus (L.) Moench]. J Agric Tech28: 611-23. doi: 10.1016/j.plaphy.2021.04.013
  • Rengel, Z. and Marschner, P. (2005) .Nutrient availability and management in the rhizosphere: exploiting genotypic differences. New Phyfol168(2):305-12. doi: 10.1111/j.1469-8137.2005.01558.x.
  • Saima, S., Ghaffar, F., Yasin ,G., Nawaz, M. and Ahmad, K.M. (2022) Effect of salt stress on the germination and early seedling growth in Okra (Abelmoschus esculentus). Sarhad J Agri 38(2): 388-397.
  • Salem, E.M.M., Kenawey, M.K.M., Saudy, H.S. and Mubarak, M. (2022) Influence of silicon forms on nutrients accumulation and grain yield of wheat under water deficit conditions. Gesunde Pflanzen. https://doi.org/10.1007/s10343-022-00629-y
  • Siddiqui, M.H., Mohammad,.F, Khan, M.N., Al-Whaibi, M.H. and Bahkali, A.H.A. (2010). Nitrogen in relation to photosynthetic capacity and accumulation of osmoprotectant and nutrients in brassica genotypes grown under salt stress. Agricul Sci China. 9(5): 671-680. doi: 10.1016/S1671-2927(09)60142-5
  • Ünlükara, A., Kurunç, A., Kesmez, G.D. and Yurtseven, E. (2008).Growth and évapotranspiration of okra (Abelmoschus esculentus L.) as influenced by salinity of irrigation water. J Irrig & Drain Eng 134: 2,160-166. doi: 10.1061/(ASCE)07339437(2008)134:2(160)
  • Wang, M., Zheng, Q., Shen, Q. and Guo, S. (2013). The Critical Role of Potassium in Plant Stress Response. Int J Mol Sci 14, 7370-7390; doi:10.3390/ijms14047370
  • Yuan, F., Wu-yan, S., Yanessa, P. and Fang-qin, C. (2021.) Synergistic effect of Si and K in improving the growth, ion distribution and partitioning of Lolium perenne L. under saline-alkali stress. J Integr Agri 20(6): 1660-1673.doi: 10.1016/s2095-3119(20)63277-4
  • Zaman ,M., Shahid, S.A., Heng, L. (2018). Guideline for salinity assessment, mitigation and adaptation using nuclear and related techniques. Springer, Cham. Pp.164. https://doi.org/10.1007/978-3-319-96190-3.
  • Zapata, F. (1990). Isotope techniques in soil and plant nutrition studies. In: Hardarson G. (ed.), Use of nuclear techniques in studies of soil-plant relationships. International Atomic Energy Agency (IAEA), Vienna. pp. 61-127.
  • Zhu, Y. and Gong ,H. (2014). Beneficial effects of silicon on salt and drought tolerance in plants. Agro Sustain Develop 34:455-472. doi 10.1007/s13593-013-0194-1.
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