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Research Articles

Biofortification of linseed (Linum usitatissimum L.) through mineral and chelated forms of Zn on yield, Zn accumulation, quality parameters, efficiency indices and economic under low Zn soils of North-Western India

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Pages 356-369 | Received 25 May 2021, Accepted 06 Jan 2022, Published online: 03 May 2022

References

  • Afsahi, K., M. Nazari, H. Omidi, F. Shekari, and A. A. Bostani. 2020. The effects of different methods of zinc application on canola seed yield and oil content. Journal of Plant Nutrition 43 (8):1070–1079. doi: 10.1080/01904167.2020.1724299.
  • Alloway, B. J. 2008. Zinc in soils and crop nutrition. 2th ed., 136, Brussels: International Zinc Association (IZA).
  • Angelova, V., R. Ivanova, V. Delibaltova, and K. Ivanov. 2004. Bioaccumulation and distribution of heavy metals in fibre crops (flax, cotton and hemp). Industrial Crops and Products 19 (3):197–205. doi: 10.1016/j.indcrop.2003.10.001.
  • Anonymous. 2019. Package of practices for Rabi crops of Punjab. Ludhiana: Punjab Agricultural University. https://www.pau.edu/content/pf/pp_rabi.pdf.
  • Bakry, A. B., O. A. Nofal, M. S. Zeidan, and M. Hozayn. 2015. Potassium and zinc in relation to improve flax varieties yield and yield components as grown under sandy soil conditions. Agricultural Sciences 06 (01):152–8. doi: 10.4236/as.2015.61013.
  • Bernacchia, R., R. Preti, and G. Vinci. 2014. Chemical composition and health benefits of Flaxseed. Austin Journal of Nutrition and Food Sciences 2:1045.
  • Bhargava, A., S. Shukla, J. Srivastava, N. Singh, and D. Ohri. 2008. Genetic diversity for mineral accumulation in the foliage of Chenopodium spp. Scientia Horticulturae 118 (4):338–46. doi: 10.1016/j.scienta.2008.06.019.
  • Boonchuay, P., I. Cakmak, B. Rerkasem, and C. Prom-U-Thai. 2013. Effect of different zinc applications at different growth stages on grain zinc content and its impact on grainling growth and vigor in rice. Soil Science and Plant Nutrition 59 (2):180–188. doi: 10.1080/00380768.2013.763382.
  • Cakmak, I. 2008. Enrichment of cereal grains with zinc: Agronomic or genetic biofortification? Plant and Soil 302 (1–2):1–17. doi: 10.1007/s11104-007-9466-3.
  • Cakmak, I., and U. B. Kutman. 2018. Agronomic biofortification of cereals with zinc: A review. European Journal of Soil Science 69 (1):172–80. doi: 10.1111/ejss.12437.
  • Confortin, T. C., I. Todero, L. Luft, G. Ugalde, M. Mazutti, Z. Oliveira, E. Bottega, A. Knies, G. Zabot, and M. Tres. 2019. Oil yields, protein contents, and cost of manufacturing of oil obtained from different hybrids and sowing dates of canola. Journal of Environmental Chemical Engineering 7 (2):102972. doi: 10.1016/j.jece.2019.102972.
  • Dhaliwal, S. S., U. S. Sadana, J. S. Manchanda, and H. S. Dhadli. 2009. Biofortification of wheat grains with zinc (Zn) and iron (Fe) in typic Ustochrept soils of Punjab. Indian Journal of Fertilisers 5:13–6.
  • Dhaliwal, S. S., A. S. Sandhu, A. K. Shukla, V. Sharma, B. Kumar, and R. Singh. 2020. Bio-fortification of oats fodder through zinc enrichment to reduce animal malnutrition. Journal of Agricultural Science and Technology A 10:98–108.
  • Dhaliwal, S. S., U. S. Sadana, M. P. Khurana, and S. S. Sidhu. 2010. Enrichment of rice grains with zinc and iron through ferti-fortification. Indian Journal Fertilizers 6:28–35.
  • Dhaliwal, S. S., U. S. Sadana, J. S. Manchanda, and D. Kumar. 2013. Differential response of maize cultivars to zinc (Zn) in relation to food security and alleviation of Zn malnutrition. Indian Journal Fertilizers 9:24–30.
  • Dhaliwal, S. S., V. S. Sharma, A. K. Shukla, J. Kaur, V. Verma, P. Singh, H. Singh, S. H. Abdel-Hafez, S. Sayed, A. Gaber, et al. 2021a. Enrichment of zinc and iron micronutrients in lentil (Lens culinaris Medik.) through biofortification. Molecules 26 (24):7671. doi: 10.3390/molecules26247671.
  • Dhaliwal, S. S., V. Sharma, A. K. Shukla, V. Verma, P. S. Sandhu, S. K. Behera, P. Singh, J. Kaur, H. Singh, S. H. Abdel-Hafez, et al. 2021b. Interactive Effects of foliar application of zinc, iron and nitrogen on productivity and nutritional quality of Indian mustard (Brassica juncea L.). Agronomy 11 (11):2333. doi: 10.3390/agronomy11112333.
  • Dhaliwal, S. S., V. Sharma, A. K. Shukla, V. Verma, S. K. Behera, P. Singh, S. S. Alotaibi, A. Gaber, and A. Hossain. 2021c. Comparative efficiency of mineral, chelated and nano forms of zinc and iron for improvement of zinc and iron in chickpea (Cicer arietinum L.) through biofortification. Agronomy 11 (12):2436. doi: 10.3390/agronomy11122436.
  • Diwan, D.,. P. Sirothia, and A. K. Dwivedi. 2019. The interaction effect of sulphur and zinc on yield of linseed crop. Journal of Pharmacognosy and Phytochemistry 8:2047–50.
  • Emam, S. 2020. Estimation of straw, seed and oil yields for flax plants (Linum usitatissimum L.) cultivars of foliar application of Mn, Fe and Zn under dry environment. Egyptian Journal of Agronomy 42:35–46.
  • Fernández, V., H. A. Bahamonde, J. J. Peguero-Pina, E. Gil-Pelegrín, D. Sancho-Knapik, L. Gil, H. E. Goldbach, and T. Eichert. 2017. Physico-chemical properties of plant cuticles and their functional and ecological significance. Journal of Experimental Botany 68 (19):5293–306. doi: 10.1093/jxb/erx302.
  • Fernández, V., and P. H. Brown. 2013. From plant surface to plant metabolism: The uncertain fate of foliar-applied nutrients. Frontiers in Plant Science 4:289. doi: 10.3389/fpls.2013.00289.
  • Ghasal, P. C., Y. S. Shivay, V. Pooniya, M. Choudhary, and R. K. Verma. 2017. Response of wheat genotypes to zinc fertilization for improving productivity and quality. Archives of Agronomy and Soil Science 63 (11):1597–612. doi: 10.1080/03650340.2017.1289515.
  • Gonzalez, D., P. Almendros, and J. M. Alvarez. 2016. Effects of synthetic Zn chelates on flax response and soil Zn status. Spanish Journal of Agricultural Research 14 (3):e1104–14. doi: 10.5424/sjar/2016143-8765.
  • Gonzalez, D., A. Obrador, and J. M. Alvarez. 2007. Behavior of zinc from six organic fertilizers applied to a navy bean crop grown in a calcareous soil. Journal of Agricultural and Food Chemistry 55 (17):7084–92. doi: 10.1021/jf071090v.
  • Gonzalez, D., A. Obrador, L. M. Lopez-Valdivia, and J. M. Alvarez. 2008. Effect of zinc source applied to soils on its availability to navy bean. Soil Science Society of America Journal 72 (3):641–9. doi: 10.2136/sssaj2007.0099.
  • Hall, C., M. C. Tulbek, and Y. Xu. 2006. Flaxseed. Advances in Food and Nutrition Research 51:1–97. doi: 10.1016/S1043-4526(06)51001-0.
  • Gujral, H. S., M. Angurala, P. Sharma, and J. Singh. 2011. Phenolic content and antioxidant activity of germinated and cooked pulses. International Journal of Food Properties 14 (6):1366–74. doi: 10.1080/10942911003672167.
  • Hasnain, M., J. Chen, N. Ahmed, S. Memon, L. Wang, Y. Wang, and P. Wang. 2020. The effects of fertilizer type and application time on soil properties, plant traits, yield and quality of tomato. Sustainability 12 (21):9065. doi: 10.3390/su12219065.
  • Hidoto, L., W. Worku, H. Mohammed, and B. Taran. 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):0–26. doi: 10.4067/S0718-95162017005000009.
  • Jackson, M. L. 1973. Soil chemical analysis. New Delhi: Prentice hall of India Pvt Ltd.
  • Jha, A. B., and T. D. Warkentin. 2020. Biofortification of pulse crops: Status and future perspectives. Plants 9 (1):73. doi: 10.3390/plants9010073.
  • Jiao, Y., C. A. Grant, and L. D. Bailey. 2007. Growth and nutrient response of flax and durum wheat to phosphorus and zinc fertilizers. Canadian Journal of Plant Science 87 (3):461–70. doi: 10.4141/P05-212.
  • Kaur, J., D. S. Bhatti, and M. S. Goyal. 2015. Influence of copper application on forage yield and quality of oats fodder in copper deficient soils. Indian Journal of Animal Nutrition 32:290–4.
  • Kohnaward, P., J. Jalilian, and A. Pirzad. 2012. Effect of foliar application of micro-nutrients on yield and yield components of safflower under conventional and ecological cropping systems. International Research Journal of Applied and Basic Science 3:1460–9.
  • Korkmaz, K.,. A. Kirli, M. Akgün, and O. Dede. 2018. Effects of different levels of foliar zinc and application time on total phenolic content and antioxidant activity of potato. Fresenius Environmental Bulletin 27:4192–7.
  • Kumar, B., and S. S. Dhaliwal. 2021. Zinc biofortification of dual-purpose cowpea (Vigna unguiculata (L.) Walp.) for enhancing the productivity and nutritional quality in a semi-arid region of India. Archives of Agronomy and Soil Science 1–15. doi: 10.1080/03650340.2020.1868040.
  • Lindsay, W. L., and W. A. 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.
  • Merwin, H. D., and M. Peech. 1951. Exchangeability of soils potassium in the sand, silt and clay fractions as influenced by the nature of the complementary exchangeable cations. Soil Science Society of America Journal 15 (C):125–8. doi: 10.2136/sssaj1951.036159950015000C0026x.
  • Millis, P. 2002. Nutrition, cooking and health: Let’s eat flax. Whole-ness and wellness. Journal of Saskatchewan 8:8–9.
  • Nofal, O., M. S. Zedian, and B. A. Bakry. 2011. Flax yield and quality traits as affected by zinc foliar application under newly reclaimed sandy soils. Journal of Applied Sciences Research 7 (9):1361–7.
  • Olsen, S. R., C. V. Cole, F. S. Watanabe, and L. A. Dean. 1954. Estimation of available phosphorus by extraction with sodium bicarbonate. US Departmental Agricultural Circular 939:1–19.
  • Rastogi, A., B. K. Mishra, M. Singh, R. Mishra, and S. Shukla. 2014. Role of micronutrients on quantitative traits and prospects of its accumulation in linseed (Linum usitatissimum L. Archives of Agronomy and Soil Science 60 (10):1389–409. doi: 10.1080/03650340.2014.887846.
  • Rengel, Z. 2001. Genotypic differences in micronutrient use efficiency in crops. Communications in Soil Science and Plant Analysis 32 (7–8):1163–86. doi: 10.1081/CSS-100104107.
  • Sadak, M. S., and A. K. Bakry. 2020. Zinc-oxide and nano ZnO oxide effects on growth, some biochemical aspects, yield quantity, and quality of flax (Linum uitatissimum L.) in absence and presence of compost under sandy soil. Bulletin of the National Research Centre 44 (98):1–12. doi: 10.1186/s42269-020-00348-2.
  • Sadeghi, F., A. Rezeizad, and M. Rahimi. 2021. Effect of zinc and magnesium fertilizers on the yield and some characteristics of wheat (Triticum aestivum L.) seeds in two years. International Journal of Agronomy 2021:1–6.(doi: 10.1155/2021/8857222.
  • Shivay, Y. S., R. Prasad, and A. Rahal. 2010. Genotypic variation for productivity, zinc utilization efficiencies and kernel quality in rice under low available zinc conditions. Journal of Plant Nutrition 33 (12):1835–48. doi: 10.1080/01904167.2010.503832.
  • Shukla, A. K., S. K. Behera, A. Pakhre, and S. K. Chaudhari. 2018. Micronutrients in soils, plants, animals and humans. Indian Journal of Fertilisers 14:30–54.
  • Singh, S., and V. Singh. 2017. Productivity, quality and nutrients uptake of some rabi crops under zinc nutrition in alluvial soil. Annals of Plant and Soil Research 19:355–9.
  • Srivastava, R. L. 2010. Technology for increasing production, project coordinated Unit (Linseed). Kanpur, India.
  • Tahir, M., M. Irfan, and A. U. Rehman. 2014. Effect of foliar application of zinc on yield and oil contents of flax. Pakistan Journal of Agricultural Research 27:287–95.
  • Tian, S., L. Lu, R. Xie, M. Zhang, J. Jernstedt, D. Hou, C. Ramsier, and P. Brown. 2014. Supplemental macronutrients and microbial fermentation products improve the uptake and transport of foliar applied zinc in sunflower (Helianthus annuus L.) plants. Studies utilizing micro X-ray florescence. Frontiers in Plant Science 5:808. doi: 10.3389/fpls.2014.00808.
  • Vamerali, T., M. Bandiera, and G. Mosca. 2010. Field crops for phytoremediation of metal-contaminated land: A review. Environmental Chemistry Letters 8 (1):1–17. doi: 10.1007/s10311-009-0268-0.
  • Velu, G., I. Ortiz-Monasterio, I. Cakmak, Y. Hao, and R. P. Singh. 2014. Biofortification strategies to increase grain zinc and iron concentrations in wheat. Journal of Cereal Science 59 (3):365–72. doi: 10.1016/j.jcs.2013.09.001.
  • Walkley, A., and C. A. Black. 1934. An examination of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science 37:1367–78.
  • Win, S. S., and T. A. Trabold. 2018. Sustainable waste-to-energy technologies: Transesterification. Sustainable Food Waste-To-Energy Systems 89–109. doi: 10.1016/b978-0-12-811157-4.00006-1.
  • Yumei, D., L. Peng, M. David, and H. Longbin. 2014. Foliar zinc uptake processes and critical factors influencing foliar Zn efficacy. Biointerface Research in Applied Chemistry 4:754–66.
  • Zinzala, V. N., and A. V. Narwade. 2019. Effect of zinc applications on grain yield, straw yield and harvest index in kharif rice (Oryza sativa L.) genotypes. International Journal of Current Microbiology and Applied Sciences 8 (11):27–35. doi: 10.20546/ijcmas.2019.811.004.

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