PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

The effect of organic extracts on the microelements content in selected species of forage grasses

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The aim of the study was to determine the effect of soil fertilising biopreparations, i.e. compost extract, vermicompost extract and humus extract, used against the background of NPK mineral fertilisation, on the content of manganese, iron, zinc and copper in the biomass of Lolium perenne, Festulolium braunii, and Dactylis glomerata. In the spring of 2019 and 2020, a single dose of the biological preparation was applied. During each vegetation period, the plants were mown three times. During mowing, fresh plant mass was taken from each plot, dried, ground and the content of Cu, Zc, Mn and Fe was determined using the ICP-AES method. The use of a biological preparation with the composition of an extract from compost significantly increased the content of Mn, Fe and Zn in the dry mass of the tested grass species. The grass species that accumulated the highest total content of microelements in its above-ground parts was Lolium perenne. The use of only biological preparations in the cultivation of the analysed grass species gave better production effects, for example in the form of a higher concentration of microelements in the dry mass of plants compared to objects fed only with minerals. This creates the possibility of using the tested biopreparations in organic farms. The Fe:Mn ionic ratio was too wide in relation to the standards on all experimental objects, which resulted from the excess of Fe in the plants. Only the combination of compost extract with mineral fertilisation narrowed the above relationship, but it was still too high.
Wydawca
Rocznik
Tom
Strony
137--144
Opis fizyczny
Bibliogr. 30 poz., tab., wykr.
Twórcy
autor
  • University of Siedlce, Institute of Agriculture and Horticulture, Prusa 14, 08-110 Siedlce, Poland
  • University of Siedlce, Institute of Agriculture and Horticulture, Prusa 14, 08-110 Siedlce, Poland
  • University of Siedlce, Institute of Agriculture and Horticulture, Prusa 14, 08-110 Siedlce, Poland
Bibliografia
  • Clark, R.B. and Baligar, V.C. (2003) “Mineral concentration of forage legumes and grasses grown in acidic soil amended with flue gas desulfurization products,” Communications in Soil and Plant Analysis, 34(11–12), pp. 1681–1707. Available at: https://doi.org/10.1081/CSS-120021306.
  • CLIMCITIES (2017) Strategia adaptacji do zmian klimatu miasta Siedlce do roku 2025 z perspektywą do 2030. Projekt CLIMCITIES. Adaptacja do zmian klimatu małych i średnich miast Polski [Climate change adaptation strategy for the city of Siedlce until 2025 with a perspective until 2030. CLIMCITIES Project. Adaptation to climate change in small and medium-sized Polish towns]. Warszawa. Available at: https://www.bip.siedlce.pl/bip/89_um-siedlce/fckeditor/file/Ochrona_srodowiska/strategia_adaptacji_-do_zmian_klimatu_Siedlce.pdf (Accessed: October 15, 2024).
  • Czyżyk, F. (2009) “Contents of Zn, Cu, Cr, Ni in grasses and maize fertilized with compost of rural sewage sludge,” Zeszyty Problemowe Postępów Nauk Rolniczych, 541(1), pp. 89–95.
  • Desoky, E.M., Merwad, A.M. and Ibrahim, S.A. (2019) “Humus materials and moringa (Moringa oleifera Lam.) leaf extract modulate the harmful effect of soil salinity stress in Sudan grass (Sorghum vulgare L.),” Egyptian Journal of Agronomy, 41(1), pp. 29–45. Available at: https://doi.org/10.21608/agro.2019.6844.1141.
  • Espíndola-Gonzalez, A. et al. (2014) “Structural characterization of silica particles extracted from grass Stenotaphrum secundatum: Biotransformation via annelids,” Advances in Materials Science and Engineering, 956945. Available at: https://doi.org/10.1155/2014/956945.
  • Falkowski, M., Kukiełka, I. and Kozłowski, S. (2000) Właściwości chemiczne roślin łąkowych [Chemical properties of meadow plants]. Poznań: Wyd. Akademii Rolniczej im. Augusta Cieszkowskiego.
  • Godlewska, A. and Ciepiela, G.A. (2016) “Effect of the biostimulant Kalpak SL on the content of some microelements in two grass species,” Journal of Elementology, 21(2), pp. 373–381. Available at: https://doi.org/10.5601/jelem.2015.20.2.858.
  • Graziano, M. and Lamattina, L. (2005) “Nutric oxide and iron in plants: an emerging and converging story,” Trends in Plant Science, 10(1), pp. 4–8. Available at: https://doi.org/10.1016/j.tplants.2004.12.004.
  • Hari Babu, R. and Savithramma, N. (2014) “Evaluation of grass species for elements through ICP-OES technique,” International Journal of Pharmaceutical Sciences and Research 5(11), pp. 4908–4915.
  • Jamroz, D. (2001) “Składniki mineralne [Minerals],” in D. Jamroz (ed.) Żywienie zwierząt i paszoznawstwo. T. 1. Fizjologiczne i biochemiczne podstawy żywienia zwierząt [Animal nutrition and feed science. Vol. 1. Physiological and biochemical bases of animal nutrition]. Warszawa: Wydaw. Nauk. PWN, pp. 74–89.
  • Kabata-Pendias, A. and Pendias, H. (1999) Biogeochemia pierwiastków śladowych [Biogeochemistry of trace elements]. Warszawa: Wydaw. Nauk. PWN.
  • Kuziemska, B. et al. (2021) “Supplementation of organic amendments improve yield and adaptability by reducing the toxic effect of copper in cocksfoot grass (Dactylis glomerata L. Cv Amera),” Agronomy, 11(4), 791. Available at: https://doi.org/10.3390/agronomy11040791.
  • Lombnaes, P. and Singh, B.R. (2003) “Varietal tolerance to zinc deficiency in wheat and barley grown in chelator-buffered nutrient solution and its effect on uptake of Cu, Fe, and Mn,” Journal of Plant Nutrition and Soil Science, 166, pp. 76–83. Available at: https://doi.org/10.1002/jpln.200390015.
  • Michalak, I., Tuhy, L. and Chojnacka, K. (2016) “Co-composting of algae and effect of the compost germination and growth of Lepidium sativum,” Polish Journal of Environmental Studies, 25(3), pp. 1107–1115. Available at: https://doi.org/10.15244/pjoes/61795.
  • Mlalazi, N., Chimuka, L. and Simatele, M.D. (2024) “Synergistic effect of compost and moringa leaf extract biostimulants on the remediation of gold mine tailings using Chrysopogon zizanioides,” Scientific African, e02358. Available at: https://doi.org/10.1016/j.sciaf.2024.e02358.
  • Murawska, B., Spychaj-Fabisiak, E. and Długosz, J. (2006) “The relationship between available zinc content and basic parameters of arable soil,” Polish Journal of Environmental Studies, 15(2A,II), pp. 436–439. Available at: https://eurekamag.com/research/012/933/012933516.php?srsltid=AfmBOooGkJG3Cm1zgawVQt9c-nEEBItb5pbsEtytaKKhtN3WXCGohL-Pc (Accessed: October 15, 2024).
  • Olszewska, M. et al. (2008) “Effect of copper deficiency on gas exchange parameters, leaf greenness (SPAD) and yield of perennial ryegrass (Lolium perenne L.) and orchid grass (Dactylis glomerata L.),” Journal of Elementology, 13(4), pp. 597–604. Available at: https://bibliotekanauki.pl/articles/15888.pdf (Accessed: June 24, 2024).
  • Ostrowska, A., Gawliński, S. and Szczubiałka, Z. (1991) Metody analizy i oceny właściwości gleb i roślin [Methods of analysis and evaluation of soil and plant properties. Warszawa: Dział Wydawnictw IOŚ.
  • Patorczyk-Pytlik, B. and Skoczyliński, M. (2004) “Zawartość żelaza i manganu [Iron and manganese content],” Zeszyty Problemowe Postępów Nauk Rolniczych, 502, pp. 603–609. Available at: https://agro.icm.edu.pl/agro/element/bwmeta1.element.agro-article-fad076c3-7c5b-4cf0-ae46-818a503d70ba (Accessed: May 30, 2024).
  • PTG (2019) Systematyka gleb Polski [Polish soil classification]. Wrocław–Warszawa: Polskie Towarzystwo Gleboznawcze, Komisja Genezy Klasyfikacji i Kartografii Gleb. Wydawnictwo Uniwersytetu Przyrodniczego we Wrocławiu, Polskie Towarzystwo Gleboznawcze. Available at: http://www.ejpau.media.pl/PDFy/systematyka-gleb-polski-wyd%206.pdf#:~:text=Systematyka%20gleb%20Polski%20wyd%206%20-%202019.indb%202 (Accessed: May 30, 2024).
  • Radkowski, A. and Nicia, P. (2009) “Chemical evaluation of two timothy grass (Phleum pratense L.) cultivars as affected by the harvesting date part II. Microelement contents,” Ecological Chemistry and Engineering A – Chemia i Inżynieria Ekologiczna, 16(7), pp. 855–859. Available at: https://yadda.icm.edu.pl/baztech/element/bwmeta1.element.baztech-article-BPG8-0021-0023 (Accessed: June 24, 2024).
  • Rios, G.R. et al. (2023) “Iron excess and nitrogen deprivation influence photosynthetic metabolism in grasses used for mineland rehabilitation,” Theoretical and Experimental Plant Physiology, 35(4), pp. 427–442. Available at: https://doi.org/10.1007/s40626-023-00298-w.
  • Sosnowski, J., Truba, M. and Jarecka, K. (2022a) “Effect of humus, compost, and vermicompost extracts on the net energy concentration, net energy of lactation, and energy yield of Dactylis glomerata and Lolium perenne,” Agriculture, 12(8), 1092. Available at: https://doi.org/10.3390/agriculture12081092.
  • Sosnowski, J., Truba, M. and Jarecka, K. (2022b) “Effect of biological and mineral fertilizers on macronutrient content in selected forage grass species,” Journal of Elementology, 27(2), pp. 393–403. Available at: https://doi.org/10.5601/jelem.2022.27.1.2262.
  • Spiak, Z. (2000) “Mikroelementy w rolnictwie [Microelements in agriculture],” Zeszyty Problemowe Postępów Nauk Rolniczych, 471, pp. 29–34. Available at: https://agro.icm.edu.pl/agro/element/bwmeta1.element.agro-3d14682a-80ae-4a0d-820a-3e607c5cc7ba (Accessed: May 30, 2024).
  • Strzetelski, J. and Śliwiński, B. (2009) “Normy żywienia bydła [Cattle feeding standards],” in J. Strzetelski (ed.) IZ PIB-INRA Normy żywienia przeżuwaczy. Wartość pokarmowa francuskich i krajowych pasz dla przeżuwaczy [IZ PIB-INRA Ruminant feeding standards. Nutritional value of French and national ruminant feeds]. Kraków: Instytut Zootechniki – PIB, pp. 21–90.
  • Styrczula, P. and Możdżer, E. (2014) “Interaction of organic fertilisation with multi-component mineral fertilisers and their effect on the content of microelements in perennial ryegrass,” Journal of Elementology, 19(2), pp. 519–532. Available at: https://doi.org/10.5601/jelem.2014.19.2.653.
  • Truba, M. et al. (2018) “The effect of soil conditioners on total protein and crude fiber concentration in selected grass species,” Applied Ecology and Environmental Research, 16(3), pp. 2729–2739. Available at: http://dx.doi.org/10.15666/aeer/1603_27292739.
  • Truba, M. et al. (2020) “The effect of soil conditioners on the quality of selected forage grasses,” Applied Ecology and Environmental Research, 18(4), pp. 5123–5133. Available at: http://dx.doi.org/10.15666/aeer/1804_51235133.
  • Wang, Y. et al. (2021) “Antioxidant regulation of iron as a repressor for salt-induced leaf senescence in perennial grass species,” Plant Growth Regulation, 94, pp. 287–301. Available at: https://doi.org/10.1007/s10725-021-00716-6.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-64689d85-b206-4404-a2aa-238c734c0e68
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.