138
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Effects of combining phosphorus (P) and zinc (Zn) fertilization on P-Zn distribution and yield in safflower

ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon
Pages 1585-1595 | Received 01 Jul 2022, Accepted 25 Jan 2024, Published online: 13 Feb 2024

References

  • Abbadi, J., and J. Gerendás. 2015. Phosphorus use efficiency of safflower (Carthamus tinctorius L.) and sunflower (Helianthus annuus L.). Journal of Plant Nutrition 38 (7):1121–42. doi:10.1080/01904167.2014.983115.
  • Aboyeji, C. M., O. Dunsin, A. O. Adekiya, K. O. Suleiman, C. Chinedum, F. O. Okunlola, A. Joseph, S. W. Ejue, O. O. Adesola, T. A. J. Olofintoye, et al. 2020. Synergistic and antagonistic effects of soil applied P and Zn fertilizers on the performance, minerals and heavy metal composition of groundnut. Open Agriculture 5 (1):1–9. doi:10.1515/opag-2020-0002.
  • Amanullah I., Inamullah X. 2016. Dry matter partitioning and harvest index differ in rice genotypes with variable rates of phosphorus and zinc nutrition. Rice Science 23(2):78–87. doi:10.1016/j.rsci.2015.09.006.
  • Amanullah, S. A., A. Iqbal, and S. Fahad. 2016. Foliar phosphorus and zinc application improve growth and productivity of maize (Zea mays L.) under moisture stress conditions in semi-arid climates. Journal of Microbial & Biochemical Technology 08 (05):433–9. doi:10.4172/1948-5948.1000321.
  • Amanullah, I., M. S. Alwahibi, M. S. Elshikh, J. Alkahtani, A. Muhammad, S. I. Khalid, M. Ahmad, N. Khan, S. Ullah, and A. Izhar. 2020. Phosphorus and zinc fertilization improve zinc biofortification in grains and straw of coarse vs. fine rice genotypes. Agronomy, 8, 10, 1155. doi:10.3390/agronomy10081155.
  • Anicesio, A. E. C., Bonfim-Silva, E. M. A. da Silva, T. J, and Koetz, M. 2015. Dry mass, nutrient concentration and accumulation in safflower (Carthamus tinctorius L.) influenced by nitrogen and potassium fertilizations. Australian Journal of Crop Science 9 (6):552.
  • Anicesio, E. C. A. D. E., E. M. Bonfim-Silva, T. J. A. D. A. Silva, and A. B. Pacheco. 2018. Nitrogen and potassium in safflower: Chlorophyll index, biometric characteristics and water use efficiency. Revista Caatinga 31 (2):424–33. doi:10.1590/1983-21252018v31n219rc.
  • Ayamba, B. E., R. C. Abaidoo, A. Opoku, and N. Ewusi-Mensah. 2023. Mechanisms for nutrient interactions from organic amendments and mineral fertilizer inputs under cropping systems: A review. PeerJ 11: E 15135. doi:10.7717/peerj.15135.
  • Aytac, Z., N. Gulmezoglu, Z. Sirel, I. Tolay, and A. A. Torun. 2014. The effect of zinc on yield, yield components and micronutrient concentrations in the seeds of safflower genotypes (Carthamus tinctorius L.). Notulae Botanicae Horti Agrobotanici Cluj-Napoca 42 (1):202–8. doi:10.15835/nbha4219405.
  • Bouyoucos, G. J. 1962. Hydrometer method improved for making particle size analyses of soils. Agronomy Journal 54 (5):464–5. doi:10.2134/agronj1962.00021962005400050028x.
  • Bremner JM. 1965. Total nitrogen. In Methods of soil analysis. part 2, eds. Black, C.A., 1149–78. 1st ed. Madison, WI: ASA.
  • Flores, R. A., M. Xavier, K. Viçosi, A. M. Bueno, A. F. D. Andrade, M. Mesquita, and G. Santos. 2023. Can foliar application of zinc increased growth, physiology, and yield in snap beans? Journal of Plant Nutrition 46 (18):4519–31. doi:10.1080/01904167.2023.2241485.
  • Galavi, M., M. Ramroudi, and A. Tavassoli. 2012. Effect of micronutrients foliar application on yield and seed oil content of safflower (Carthamus tinctorius L.). African Journal of Agricultural Research 7 (3):482–6. doi:10.5897/AJAR11.1323.
  • Golzarfar, M., A. H. Shirani Rad, B. Delkhosh, and Z. Bitarafan. 2012. Safflower (Carthamus tinctorius L.) response to different nitrogen and phosphorus fertilizer rates in two planting seasons. ŽEmdirbystė (Agriculture) 99 (2):159–66.
  • Gianquinto, G., A. Abu-Rayyan, L. Di Tola, D. Piccotino, and B. Pezzarossa. 2000. Interaction effects of phosphorus and zinc on photosynthesis, growth and yield of dwarf bean grown in two environments. Plant and Soil 220 (1/2):219–28. doi:10.1023/A:1004705008101.
  • Gulmezoglu, N., and Z. Aytac. 2016. The influences of various zinc applications on seed yield and zinc uptake of Safflower. Journal of Soil Water 5 (2):11–7.
  • He, H., M. Wu, R. Su, Z. Zhang, C. Chang, Q. Peng, Z. Dong, j Pang, and H. Lambers. 2021. Strong phosphorus (P)-zinc (Zn) interactions in a calcareous soil-alfalfa system suggest that rational P fertilization should be considered for Zn biofortification on Zn-deficient soils and phytoremediation of Zn-contaminated soils. Plant and Soil 461 (1-2):119–34. doi:10.1007/s11104-020-04793-w.
  • Hidoto, L., W. Worku, H. Mohammed, and T. Bunyamin. 2017. Effects of zinc application strategy on zinc content and productivity of chickpea grown under zinc deficient soils. Journal of Soil Science and Plant Nutrition 17 (ahead):0– doi:10.4067/S0718-95162017005000009.
  • Ibrikci, H., J. Ryan, A. C. Ulger, G. Buyuk, B. Cakir, K. Korkmaz, E. Karnez, G. Ozgenturk, and O. Konuskan. 2005. Maintenance of phosphorus fertilizer and residual phosphorus effect on corn production. Nutrient Cycling in Agroecosystems 72 (3):279–86. doi:10.1007/s10705-005-3367-8.
  • Imran, M., A. Rehim, N. Sarwar, and S. Hussain. 2016. Zinc bioavailability in maize grains in response of phosphorous–zinc interaction. Journal of Plant Nutrition and Soil Science 179 (1):60–6. doi:10.1002/jpln.201500441.
  • Jackson, M. L. 1958. Soil chemical analysis. Prentice Hall. Inc., Englewood Cliffs, NJ, 498, 183–204.
  • Katar, D., Y. Arslan, F. Kayaçetin, I. Subasi, and Ç. Çaglar. 2010. Effect of different doses of phosphorus on the yield and yield components of safflower (Carthamus tinctorius L.). Anadolu Journal of Agricultural Sciences 26 (1):24–9.
  • Korkmaz, K., H. Ibrikci, E. Karnez, G. Buyuk, J. Ryan, A. C. Ulger, and H. Oguz. 2009. Phosphorus use efficiency of wheat genotypes grown in calcareous soils. Journal of Plant Nutrition 32 (12):2094–106. doi:10.1080/01904160903308176.
  • Korkmaz, K., H. Ibrikci, E. Karnez, G. Buyuk, J. Ryan, H. Oguz, and A. C. Ulger. 2010. Responses of wheat genotypes to phosphorus fertilization under rainfed conditions in the Mediterranean region of Turkey. Scientific Research and Essays 5:2304–11.
  • Korkmaz, K., M. Akgün, M. M. Özcan, F. Özkutlu, and ŞM. Kara. 2021. Interaction effects of phosphorus (P) and zinc (Zn) on dry matter, concentration and uptake of P and Zn in chia. Journal of Plant Nutrition 44 (5):755–64. doi:10.1080/01904167.2020.1845373.
  • Kremper, R., G. Zsigrai, A. B. Kovács, and J. Loch. 2016. Long-term effect of high phosphorus doses on zinc status of maize on a non-calcareous loamy soil. Plant, Soil and Environment 61 (1):1–5. doi:10.17221/509/2014-PSE.61.001.
  • Kumar, T., R. Smmauria, and B. L. Pareek. 2011. Response of barley (Hordeum vulgare) to phosphorus and zinc application under irrigated conditions of hyper arid plains of Rajasthan. Indian Journal of Agricultural Sciences 81 (7):662–5. doi:10.18805/lr.v0iOF.9384.
  • Li, H. Y., Y. G. Zhu, S. E. Smith, and F. A. Smith. 2003. Phosphorus–zinc interactions in two barley cultivars differing in phosphorus and zinc efficiencies. Journal of Plant Nutrition 26 (5):1085–99. doi:10.1081/PLN-120020077.
  • Lindsay, W. L., and W. Norvell. 1978. Development of a DTPA soil test for zinc, iron, manganese, and copper. Soil Science Society of America Journal 42 (3):421–8. doi:10.2136/sssaj1978.03615995004200030009x.
  • Ma, D., D. Sun, C. Wang, H. Ding, H. Qin, J. Hou, X. Huang, Y. Xie, and T. Guo. 2017. Physiological responses and yield of wheat plants in zinc-mediated alleviation of drought stress. Frontiers in Plant Science 8:860. doi:10.3389/fpls.2017.00860.
  • Murphy, J., and J. P. Riley. 1962. A modified single solution method for the determination of phosphate in natural waters. Analytica Chimica Acta 27:31–6. doi:10.1016/S0003-2670(00)88444-5.
  • Olsen, S. R. 1954. Estimation of available phosphorus in soils by extraction with sodium bicarbonate. USDA Circular 939. Washington, DC, USA: Government Printing Office.
  • Ova, E. A., U. B. Kutman, L. Ozturk, and I. Cakmak. 2015. High phosphorus supply reduced zinc concentration of wheat in native soil but not in autoclaved soil or nutrient solution. Plant and Soil 393 (1-2):147–62. doi:10.1007/s11104-015-2483-8.
  • Pathak, G. C., B. Gupta, and N. Pandey. 2012. Improving reproductive efficiency of chickpea by foliar application of zinc. Brazilian Journal of Plant Physiology 24 (3):173–80. doi:10.1590/S1677-04202012000300004.
  • Pham, H. 2023. Basic statistics. In Springer Handbook of Engineering Statistics (3–41. London: Springer London.
  • Rees, G. L., G. S. Pettygrove, and R. J. Southard. 2013. Estimating plant-available potassium in potassium-fixing soils. Communications in Soil Science and Plant Analysis 44 (1-4):741–8. doi:10.1080/00103624.2013.748129.
  • Richard, L. A. 1954. Diagnosis and improvement of saline and alkali soils. Agriculture Handbook Vol. 60. United States Department of Agriculture, Washington, DC, USA. 160p.
  • Rietra, R. P., M. Heinen, C. O. Dimkpa, and P. S. Bindraban. 2017. Effects of nutrient antagonism and synergism on yield and fertilizer use efficiency. Communications in Soil Science and Plant Analysis 48 (16):1895–920. doi:10.1080/00103624.2017.1407429.
  • Sánchez-Rodríguez, A. R., M. C. Del Campillo, and J. Torrent. 2017. Phosphorus reduces the zinc concentration in cereals pot‐grown on calcareous Vertisols from southern Spain. Journal of the Science of Food and Agriculture 97 (10):3427–32. doi:10.1002/jsfa.8195.
  • Sánchez-Rodríguez, A. R., M.-D. Rey, H. Nechate-Drif, M. Á. Castillejo, J. V. Jorrín-Novo, J. Torrent, M. C. Del Campillo, and D. Sacristán. 2021. Combining P and Zn Fertilization to Enhance Yield and Grain Quality in Maize Grown on Mediterranean Soils. Scientific Reports 11 (1):7427. 2021, doi:10.1038/s41598-021-86766-2.
  • Santos, E. F., P. Pongrac, A. R. Reis, P. J. White, and J. Lavres. 2019. Phosphorus–zinc interactions in cotton: Consequences for biomass production and nutrient‐use efficiency in photosynthesis. Physiologia Plantarum 166 (4):996–1007. doi:10.1111/ppl.12867.
  • Soheili-Movahhed, S., S. Khomari, P. Sheikhzadeh, and B. Alizadeh. 2019. Improvement in seed quantity and quality of spring safflower through foliar application of boron and zinc under end-season drought stress. Journal of Plant Nutrition 42 (8):942–53. doi:10.1080/01904167.2019.1584214.
  • Suganya, A., A. Saravanan, and N. Manivannan. 2020. Role of zinc nutrition for increasing zinc availability, uptake, yield, and quality of maize (Zea mays L.) grains: An overview. Communications in Soil Science and Plant Analysis 51 (15):2001–21. doi:10.1080/00103624.2020.1820030.
  • Vafaei, G., and A. Sarraf. 2014. Effect of phosphorus and zinc fertilizer application to increasing the quality of nourishment in winter wheat. International Journal of Biosciences 5 (4):82–7. doi:10.12692/ijb/5.4.82-87.
  • Xie, X., W. Hu, X. Fan, H. Chen, and M. Tang. 2019. Interactions between phosphorus, zinc, and iron homeostasis in nonmycorrhizal and mycorrhizal plants. Frontiers in Plant Science 10:1172. doi:10.3389/fpls.2019.01172.
  • Yu, B. G., X. X. Chen, W. Q. Cao, Y. M. Liu, and C. Q. Zou. 2020. Responses in Zinc Uptake of Different Mycorrhizal and Non-mycorrhizal Crops to Varied Levels of Phosphorus and Zinc Applications. Frontiers in Plant Science 11:606472. doi:10.3389/fpls.2020.606472.
  • Zhang, W., D. Liu, Y. Liu, Z. Cui, X. Chen, and C. Zou. 2016. Zinc uptake and accumulation in winter wheat relative to changes in root morphology and mycorrhizal colonization following varying phosphorus application on calcareous soil. Field Crops Research 197:74–82. doi:10.1016/j.fcr.2016.08.010.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.