Hort. Sci. (Prague), 2023, 50(3):189-198 | DOI: 10.17221/97/2021-HORTSCI
Effect of microbiologically enriched fertilizers on soil microorganisms in the rhizosphere of apple treesOriginal Paper
- 1 National Institute of Horticultural Research, Skierniewice, Poland
In long-term cultivation of apple trees, replantation disease may occur, caused by a set of biotic and abiotic factors, occurring in the soil, e.g. the accumulation of pathogenic and harmful microorganisms. Beneficial microorganisms can be of great importance in limiting orchard replant disease. In our study, the Urea fertilizer was enriched with Aspergillus niger and Purpureocillium lilacinum fungi, while the Polifoska 6 and Super Fos Dar 40 fertilizers with strains of the bacteria Bacillus spp., Bacillus amyloliquefaciens, and Paenibacillus polymyxa. The aim of the three-year study was to determine what effects the application of mineral fertilizers enriched with beneficial microorganisms, applied in 100% doses and in doses lower by 40% had on the microorganisms in the rhizosphere of apple trees. The number of bacteria of the genus Pseudomonas in the rhizosphere of apple trees was the highest in the combination with Urea 60% + fungi and Polifoska 60% + bacteria. These values were 2–3 times higher compared with the control. In the combination with Polifoska 60% + bacteria, the number of fluorescent Pseudomonas bacteria was five times higher compared to the control. The highest number of actinomycetes was observed in the third year of the study, in the combination with Polifoska 60% + bacteria. The use of this fertilizer increased the number of these bacteria more than five-fold compared with the control. The beneficial effect of Polifoska 60% + bacteria, Super Fos Dar 100% + bacteria, and Urea 60% + fungi on phosphate-solubilizing bacteria was observed in the third year of cultivation. The additional application of filamentous fungi together with Urea did not have a significant effect on this group of microorganisms. The obtained results show that in many cases the application of the selected fertilizers positively influenced the microorganisms inhabiting the apple-tree rhizosphere. Particularly noteworthy is Polifoska enriched with the selected bacteria, the use of which significantly increased the number of beneficial bacteria of the genus Pseudomonas.
Keywords: beneficial microorganisms, biofertilizers, Malus domestica Borkh., soil biodiversity
Accepted: February 3, 2023; Published: September 29, 2023 Show citation
ACS | AIP | APA | ASA | Harvard | Chicago | Chicago Notes | IEEE | ISO690 | MLA | NLM | Turabian | Vancouver |
References
- Ahmad S., Imran M., Hussain S., Mahmood S., Hussain A., Hasnain M. (2017): Bacterial impregnation of mineral fertilizers improves yield and nutrient use efficiency of wheat. Journal of the Science of Food and Agriculture, 97: 3685-3690.
Go to original source...
Go to PubMed...
- Biró B., Magyar K., Várady G., Kecskés M. (1998): Specific replant disease reduced by PGPR rhizobacteria on apple seedlings. In: Acta Horticulturae International Society for Horticultural Science (ISHS), 477: 75-82.
Go to original source...
- Blok W.J., Bollen G.J. (1993): The role of autotoxins from root residues of the previous crop in the replant disease of asparagus. Netherlands Journal of Plant Pathology, 99: 29-40.
Go to original source...
- Brzezińska M. (2009): Wykorzystanie ekofizjologicznych wskaźników mikrobiologicznych do oceny jakości gleb. Postępy Nauk Rolniczych, 1: 39-51.
- Čatská V., Vančura V., Hudská G., Přikryl Z. (1982): Rhizosphere micro-organisms in relation to the apple replant problem. Plant and Soil, 69: 187-197.
Go to original source...
- Ciopińska J., Bezak-Mazur E. (2018): Phosphorus solubilizing bacteria - review article. Environment: 278-287.
Go to original source...
- Derkowska E., Sas Paszt L., Harbuzov A., Trzciński P., Bogumił A. (2014): The effect of biopreparations on root growth and microbiol activity in the rhizosphere of apple trees. Acta Scientiarum Polonorum, Hortorum Cultus, 13: 127-137.
- Derkowska E., Sas Paszt L., Głuszek S., Trzciński P., Przybył M., Frąc M. (2017): Effects of treatment of apple trees with various bioproducts on tree growth and occurence of mycorrhizal fungi in thee roots. Acta Scientiarum Polonorum, Hortorum Cultus, 16: 75-83.
Go to original source...
- dos Passos J.F., da Costa P.B., Costa M.D., Zaffari G.R., Nava G., Boneti J.I., de Oliveira A.M.R., Passaglia M.P. (2014): Cultivable bacteria isolated from apple trees cultivated under different crop systems: Diversity and antagonistic activity against Colletotrichum gleosporioides. Genetics and Molecular Biology, 37: 560-572.
Go to original source...
Go to PubMed...
- Garbeva P., van Veen J.A., van Elsas J.D. (2004): Microbial diversity in soil: selection of microbial populations by plant and soil type and implications for disease suppressiveness. Annual Review of Phytopathology, 42: 242-270.
Go to original source...
Go to PubMed...
- GUS (2020). Główny Urząd Statystyczny. Produkcja ogrodnicza. Badanie sadów1 w 2017r. file:///C:/Users/user/Downloads/produkcja_ogrodnicza_badanie_sadow_w_2017.
- Gould W.D., Hagedorn C., Bardinelli T.R., Zablotowicz R.M. (1985): New selective media for enumeration and recovery of fluorescent pseudomonads from various habitats. Applied and Environmental Microbiology, 49: 28-32.
Go to original source...
Go to PubMed...
- Gupta G., Parihar S.S., Ahirwar N.K., Snehl N.K., Singh V. (2015): Plant growth promoting rhizobacteria (PGPR): current and future prospects for development of sustainable agriculture. Journal of Microbial & Biochemical Technology, 7: 96-102.
- Ishaq S.L. (2017): Plant-microbial interactions in agriculture and the use of farming systems to improve diversity and productivity. AIMS Microbiology, 3: 335-353.
Go to original source...
Go to PubMed...
- Hoestra H. (1988): General remarks on replant disease. In: Acta Horticulturae. International Society for Horticultural Science (ISHS), Leuven, Belgium, 233: 11-16.
Go to original source...
- Hsu S.C., Lockwood J.L. (1975): Powdered chitin agar as a selective medium for enumeration of Actinomycetes in water and soil. Applied Microbiology, 29: 422-426.
Go to original source...
Go to PubMed...
- Jankowska M., Swędrzyńska D. (2016): Analysis of the interactions of microorganisms in soil environment. Kosmos. Problemy Nauk Biologicznych, 65: 49-55.
- Jiang J., Song Z., Yang X., Mao Z., Nie X., Guo H., Peng X. (2017): Microbial community analysis of apple rhizosphere around Bohai Gulf. Scientific Reports-UK, 7: 8918.
Go to original source...
Go to PubMed...
- Jensen P., Buszard D. (1988): The effects of chemical fumigants, nitrogen, plastic mulch and metalaxyl on the establishment of young apple trees in apple replant disease soil. Canadian Journal of Plant Science, 68: 255-260.
Go to original source...
- Kanfra X., Liu B., Beerhues L., Sørensen S.J., Heuer H. (2018): Free-living nematodes together with associated microbes play an essential role in apple replant disease. Frontiers in Plant Science, 9: 1666.
Go to original source...
Go to PubMed...
- Karakurt H., Aslantas R. (2010): Effect of some plant growth promoting rhizobactera (PGPR) on plant growth and leaf nutrient content of apple. Journal of Fruit and Ornamental Plant Research, 18: 101-110.
- Karpenko V., Schetyna S., Voitsekhovskyi V., Ulianych O., Slobodyanyk G., Mostoviak І. (2020): Combined application of microbial preparation, mineral fertilizer and bioadhesive in production of leek. Agronomy Research, 18: 148-162.
- Koczorowski P. (2019): Influence of NPK minerals biostimulants on the growth, yield and fruit nutritional value in cv. 'Sampion' apple trees growing on differeent rootstocks. Acta Scientiarum Polonorum, Hortorum Cultus, 18: 197-205.
Go to original source...
- Kurek E., Ozimek E. (2008): Zwiększenie dostępności dla roślin fosforu obecnego w glebie metodami biologicznymi. Postępy Nauk Rolniczych, 2: 85-95.
- Kuzin A., Solovchenko A., Stepantsova L., Pugachev G. (2020): Soil fertility management in apple orchard with microbial biofertilizers. E3S Web of Conferences 222, 03020.
Go to original source...
- Lagos M.L., Maruyama F., Nannipieri P., Mora M.L., Ogram A., Jorquera M.A. (2015): Current overview on the study of bacteria in the rhizosphere by modern molecular techniques: a mini-review. Journal of Soil Science and Plant Nutrition, 15: 504-523.
Go to original source...
- Lenart-Boroń A., Banach T. (2014): Promieniowce glebowe z rodzaju Streptomyces w środowisku zanieczyszczonym metalami ciężkimi. Soil actinomycetes of the genus Streptomyces in an environment contaminated with heavy metals. Kosmos. Problemy Nauk Biologicznych, 63: 87-93.
- Mazzola M. (2002): Mechanisms of natural soil suppressiveness to soilborne diseases. Antonie van Leeuwenhoek, 81: 557-564.
Go to original source...
Go to PubMed...
- Mazzola M., Gu Y-H. (2002): Wheat Genotype-Specific Induction of Soil Microbial Communities Suppressive to Disease Incited by Rhizoctonia solani Anastomosis Group (AG)-5 and AG-8. Phytopathology, 92: 1300-1307.
Go to original source...
Go to PubMed...
- Mehta P., Chauhan A., Mahajan R., Mahajan P.K., Shirkot C.K. (2010): Strain of Bacillus circulans isolated from apple rhizosphere showing plant growth promoting potential. Current Science, 98: 538-542.
- Mosa F.A.E.W., Sas-Paszt L., Frąc M., Trzciński P. (2016): Microbial products and biofertilizers in improving growth and productivity of apple - a review. Polish Journal of Microbiology, 65: 243-251.
Go to original source...
Go to PubMed...
- Nicola L., Insam H., Pertot I., Stres B. (2018): Reanalysis of microbiomes in soils affected by apple replant disease (ARD): Old foes and novel suspects lead to the proposal of extended model of disease development. Applied Soil Ecology, 129: 24-33.
Go to original source...
- Olanrewaju O.S., Glick B.R., Babalola O.O. (2017): Mechanisms of action of plant growth promoting bacteria. World Journal of Microbiology and Biotechnology, 33: 197.
Go to original source...
Go to PubMed...
- Olsen R.A., Bakken L.R. (1987): Viability of soil bacteria: optimization of plate-counting technique and comparison between total counts and plate counts within different size group. Microbial Ecology, 13: 59-74.
Go to original source...
Go to PubMed...
- Pešaković M., Tomić Ј., Lukić M., Karaklajić-Stajić Ž., Miletić R., Paunović, S. M. (2017): Beneficial role of biofertilization on yield relateed characteristics of two apple cultivars and soil microorganisms under orchard conditions. European Journal of Sustainable Development, 6: 423-429.
Go to original source...
- Picovska R.I. (1948): Mobilization of phosphorus in soil in connection with the vital activity of some microbial species. Mikrobiologiya, 17: 362-370.
- Rabikowska B., Wilk K. (1991): Wpływ wieloletniego nawożenia obornikiem i azotem na właściwości gleby gliniastej. Część I. Odczyn gleby oraz zawartość węgla i azotu. Roczniki Gleboznawcze T. XLII, NR 3/4, Warszawa 1991: 27-35.
- Rumberger A., Merwin I.A., Thies J.E. (2007): Microbial community development in the rhizosphere of apple trees at a replant disease site. Soil Biology & Biochemistry, 39: 1645-1654.
Go to original source...
- Sharma R., Pal J., Kaur M. (2017): Isolation of phosphate solubilizing Pseudomonas strains from apple rhizosphere in the Trans Himalayan region of Himachal Pradesh, India. BioRxiv: 193672.
Go to original source...
- Singh I. (2018): Plant growth promoting rhizobacteria (PGPR) and their various mechanisms for plant growth enhancement in stressful conditions: a review. European Journal of Biological Research, 8: 191-213.
- Singh J., Silva K.J.P., Khan A. (2019): Potential role of weather, soil and plant microbial communities in rapid decline of apple trees. PloS ONE 14: e0213293.
Go to original source...
Go to PubMed...
- van Schoor L., Denman S., Cook N.C. (2009): Characterisation of apple replant disease under South African conditions and potential biological management strategies. Scientia Horticulturae, 119: 153-162.
Go to original source...
- Tilston E.L., Deakin G., Bennett J., Passey T., Harrison N., O'Brien F., Fernández-Fernández F., Xu X. (2018): Candidate causal organisms for apple replant disease in the United Kingdom. Phytobiomes Journal, 2: 261-274.
Go to original source...
- Treder W. (2003): Wpływ fertygacji nawozami azotowym i wieloskładnikowym na zmiany chemiczne gleby oraz wzrost i owocowanie jabłoni. Monografie i Rozprawy, ISK, Skierniewice.
- Utkhede R.S., Li T.S.C., Smith E.M. (1992): The effect of Glomus mosseae and Enterobacter aerogenes on apple seedlings grown in apple replant disease soil. Journal of Phytopathology, 135: 281-288.
Go to original source...
- Utkhede R., Smith E. (2000): Impact of chemical, biological and cultural treatments on the growth and yield of apple in replant-disease soil. Australasian Plant Pathology, 29: 129-136.
Go to original source...
- Yadav J., Verma J.P., Tiwari K.N. (2011): Plant growth promoting activities of fungi and their effect on chickpea plant growth. Asian Journal of Biological Sciences, 4: 291-299.
Go to original source...
- Yin Z., Shi F., Jiang H., Daniel P., Chen S.R., Fana B. (2015): Phosphate solubilization and promotion of maize growth by Penicillium oxalicum P4 and Aspergillus niger P85 in a calcareous soil. Canadian Journal of Microbiology, 61: 913-923.
Go to original source...
Go to PubMed...
- Weller D.M. (2006): Disease suppressive soils. In: Raaijmakers JM, Sikora RA, eds. IOBC wprs Bulletin. Wageningen (The Netherlands), IOBC/WPRS: 173-181.
- Zafar-ul-Hye M., Farooq H.M., Hussain M. (2015): Bacteria in combination with fertilizers promote root and shoot growth of maize in saline-sodic soil. Brazilian Journal of Microbiology, 46: 97-102.
Go to original source...
Go to PubMed...
- Zhu Z., Bai Y., Lv M., Tian G., Zhang X., Li L., Jiang Y., Ge S. (2020): Soil fertility, microbial biomass, and microbial functional diversity responses to four years feertilization in an apple orchard in north China. Horticultural Plant Journal, 6: 223-230.
Go to original source...
This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International (CC BY NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.