Abstract
AbstractAs a primary nutrient in agricultural soils, phosphorus plays a crucial but growth-limiting role for plants due to its complex interactions with various soil elements. This often results in excessive phosphorus fertilizer application, posing concerns for the environment. Agri-research has therefore shifted focus to increase fertilizer-use efficiency and minimize environmental impact by leveraging plant growth-promoting rhizobacteria. This study aimed to evaluate the in-field incremental effect of inorganic phosphate concentration (up to 50 kg/ha/P) on the ability of two rhizobacterial isolates, Lysinibacillus sphaericus (T19), Paenibacillus alvei (T29), from the previous Breedt et al. (Ann Appl Biol 171:229–236, 2017) study on maize in enhancing the yield of commercially grown Duzi® cultivar wheat. Results obtained from three seasons of field trials revealed a significant relationship between soil phosphate concentration and the isolates’ effectiveness in improving wheat yield. Rhizospheric samples collected at flowering during the third season, specifically to assess phosphatase enzyme activity at the different soil phosphate levels, demonstrated a significant decrease in soil phosphatase activity when the phosphorus rate reached 75% for both isolates. Furthermore, in vitro assessments of inorganic phosphate solubilization by both isolates at five increments of tricalcium phosphate-amended Pikovskaya media found that only isolate T19 was capable of solubilizing tricalcium at concentrations exceeding 3 mg/ml. The current study demonstrates the substantial influence of inorganic phosphate on the performance of individual rhizobacterial isolates, highlighting that this is an essential consideration when optimizing these isolates to increase wheat yield in commercial cultivation.
Publisher
Springer Science and Business Media LLC
Reference52 articles.
1. Breedt G, Labuschagne NL, Coutinho TA (2017) Seed treated with selected plant growth-promoting rhizobacteria increases maize yield in the field. Ann Appl Biol 171(2):229–236. https://doi.org/10.1111/aab.12366
2. Erisman JW, Van Grinsven H, Grizzetti B, Bouraoui F, Powlson D, Sutton MA, Bleeker A, Reis S (2011) The European nitrogen problem in a global perspective. In: Sutton MA, Howard CM, Erisman JM, Billen G, Bleeker M, Grennfelt P, van Grinsven H, Grizzetti B (eds) The European nitrogen assessment. Cambridge University Press, Cambridge, pp 9–31
3. Ayala S, Rao EVSP (2002) Perspective of soil fertility management with a focus on fertilizer use for crop productivity. Curr Sci 82:797–807
4. Food and Agriculture Organization, FAO (2017) World fertilizer trends and outlook to 2020. Summary Report. Food and Agriculture Organization of the United Nations - Rome, 2017.
5. Cordell D, Drangert JO, White S (2009) The story of phosphorus: Global food security and food for thought. Glob Environ Chang 19(2):292–305. https://doi.org/10.1016/j.gloenvcha.2008.10.009
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