This work is licensed under the Creative Commons Attribution 4.0 International License.
Abbasi M.K., Khizar A., 2012. Microbial biomass carbon and nitrogen transformations in a loam soil amended with organic-inorganic N sources and their effect on growth and N-up-take in maize. Ecological Engineering, 39: 123–132, https://doi.org/10.1016/j.ecoleng.2011.12.027.AbbasiM.K.KhizarA.2012Microbial biomass carbon and nitrogen transformations in a loam soil amended with organic-inorganic N sources and their effect on growth and N-up-take in maizeEcological Engineering39123132https://doi.org/10.1016/j.ecoleng.2011.12.027Search in Google Scholar
Ai C., Liang G.Q., Sun J., Wang X.B., He P., Zhou W., 2013. Different roles of rhizosphere effect and long-term fertilization in the activity and community structure of ammonia oxidizers in a calcareous fluvo-aquic soil. Soil Biology & Biochemistry, 57: 30–42, https://doi.org/10.1016/j.soil-bio.2012.08.003.AiC.LiangG.Q.SunJ.WangX.B.HeP.ZhouW.2013Different roles of rhizosphere effect and long-term fertilization in the activity and community structure of ammonia oxidizers in a calcareous fluvo-aquic soilSoil Biology & Biochemistry573042https://doi.org/10.1016/j.soil-bio.2012.08.003Search in Google Scholar
Aibara I., Miwa K., 2014. Strategies for optimization of mineral nutrient transport in plants: multilevel regulation of nutrient-dependent dynamics of root architecture and transporter activity. Plant and Cell Physiology, 55(12): 2027–2036, https://doi.org/10.1093/pcp/pcu156.AibaraI.MiwaK.2014Strategies for optimization of mineral nutrient transport in plants: multilevel regulation of nutrient-dependent dynamics of root architecture and transporter activityPlant and Cell Physiology551220272036https://doi.org/10.1093/pcp/pcu156Search in Google Scholar
Alori E.T., Glick B.R., Babalola O.O., 2017. Microbial phosphorus solubilization and its potential for use in sustainable agriculture. Frontiers in Microbiology, 8: 971; https://doi.org/10.3389/fmicb.2017.00971.AloriE.T.GlickB.R.BabalolaO.O.2017Microbial phosphorus solubilization and its potential for use in sustainable agricultureFrontiers in Microbiology8971https://doi.org/10.3389/fmicb.2017.00971Search in Google Scholar
Ardakani M.R., Mazaheri D., Mafakheri S., Moghaddam A., 2011. Absorption efficiency of N, P, K through triple inoculation of wheat (Triticum aestivum L.) by Azospirillum brasilense, Streptomyces sp., Glomus intraradices and manure application. Physiology and Molecular Biology of Plants, 17: 181–192, https://doi.org/10.1007/s12298-011-0065-7.ArdakaniM.R.MazaheriD.MafakheriS.MoghaddamA.2011Absorption efficiency of N, P, K through triple inoculation of wheat (Triticum aestivum L.) by Azospirillum brasilense, Streptomyces sp., Glomus intraradices and manure applicationPhysiology and Molecular Biology of Plants17181192https://doi.org/10.1007/s12298-011-0065-7Search in Google Scholar
Awad N.M., Abd El-Kader A.A., Attia M.K.A.A., & Alva A.K., 2011. Effects of nitrogen fertilization and soil inoculation of sulfur-oxidizing or nitrogen-fixing bacteria on onion plant growth and yield. International Journal of Agronomy, (1):316856, https://doi.org/10.1155/2011/316856.AwadN.M.Abd El-KaderA.A.AttiaM.K.A.A.AlvaA.K.2011Effects of nitrogen fertilization and soil inoculation of sulfur-oxidizing or nitrogen-fixing bacteria on onion plant growth and yieldInternational Journal of Agronomy1316856https://doi.org/10.1155/2011/316856Search in Google Scholar
Badr M.A., Shafei A.M., Sharaf El-Deen S.H., 2006. The dissolution of K and P-bearing minerals by silicate dissolving bacteria and their effect on sorghum growth. Research Journal of Agriculture and Biological Sciences, 2: 5–11.BadrM.A.ShafeiA.M.Sharaf El-DeenS.H.2006The dissolution of K and P-bearing minerals by silicate dissolving bacteria and their effect on sorghum growthResearch Journal of Agriculture and Biological Sciences2511Search in Google Scholar
Beltran-Medina I., Romero-Perdomo F., Molano-Chavez L. et al., 2023. Inoculation of phosphate-solubilizing bacteria improves soil phosphorus mobilization and maize productivity. Nutrient Cycling in Agroecosystems, 126: 21–34, https://doi.org/10.1007/s10705-023-10268-y.Beltran-MedinaI.Romero-PerdomoF.Molano-ChavezL.2023Inoculation of phosphate-solubilizing bacteria improves soil phosphorus mobilization and maize productivityNutrient Cycling in Agroecosystems1262134https://doi.org/10.1007/s10705-023-10268-ySearch in Google Scholar
Bhattacharya S., Bachani P., Jain D., Patidar S. K., Mishra S., 2016. Extraction of potassium from K-feldspar through potassium solubilization in the halophilic Acinetobacter soli (MTCC 5918) isolated from the experimental salt farm. International Journal of Mineral Processing, 152: 53–57, https://doi.org/10.1016/j.minpro.2016.05.003.BhattacharyaS.BachaniP.JainD.PatidarS. K.MishraS.2016Extraction of potassium from K-feldspar through potassium solubilization in the halophilic Acinetobacter soli (MTCC 5918) isolated from the experimental salt farmInternational Journal of Mineral Processing1525357https://doi.org/10.1016/j.minpro.2016.05.003Search in Google Scholar
Bin L., Bin W., Mu P., Liu C., Teng H. H., 2010. Microbial release of potassium from K-bearing minerals by thermophilic fungus Aspergillus fumigatus. Geochimica et Cosmochimica Acta, 72: 87–98, https://doi.org/10.1016/j.gca.2007.10.005.BinL.BinW.MuP.LiuC.TengH. H.2010Microbial release of potassium from K-bearing minerals by thermophilic fungus Aspergillus fumigatusGeochimica et Cosmochimica Acta728798https://doi.org/10.1016/j.gca.2007.10.005Search in Google Scholar
Biofertilizers Market Size, Share, and Trends 2025 to 2034. https://www.precedenceresearch.com/biofertilizers-market.Biofertilizers Market Size, Share, and Trends 2025 to 2034https://www.precedenceresearch.com/biofertilizers-marketSearch in Google Scholar
Chaudhary S., Dhanker R., Kumar R., Goyal S., 2022. Importance of legumes and role of Sulphur oxidizing bacteria for their production: a review. Legume Research-An International Journal, 45(3): 275–284.ChaudharyS.DhankerR.KumarR.GoyalS.2022Importance of legumes and role of Sulphur oxidizing bacteria for their production: a reviewLegume Research-An International Journal453275284Search in Google Scholar
Chaudhary S., Sindhu S. S., Dhanker R., Kumari A., 2023. Microbes-mediated sulphur cycling in soil: Impact on soil fertility, crop production and environmental sustainability. Microbiological Research, 271: 127340, https://doi.org/10.1016/j.micres.2023.127340.ChaudharyS.SindhuS. S.DhankerR.KumariA.2023Microbes-mediated sulphur cycling in soil: Impact on soil fertility, crop production and environmental sustainabilityMicrobiological Research271127340https://doi.org/10.1016/j.micres.2023.127340Search in Google Scholar
Chen J.W., Li J., Yan J.J., Li H.X., Zhou X., 2014. Abundance and community composition of ammonia-oxidizing bacteria and archaea under different regeneration scenarios in Chinese Loess Plateau. Soil Science, 179: 369–375, https://doi.org/10.1097/SS.0000000000000080.ChenJ.W.LiJ.YanJ.J.LiH.X.ZhouX.2014Abundance and community composition of ammonia-oxidizing bacteria and archaea under different regeneration scenarios in Chinese Loess PlateauSoil Science179369375https://doi.org/10.1097/SS.0000000000000080Search in Google Scholar
Chen Y.P., Rekha P.D., Arun A.B., Shen F.T., Lai W.A., Young C.C., 2006. Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities. Applied Soil Ecology, 34(1): 33–41, https://doi.org/10.1016/j.apsoil.2005.12.002.ChenY.P.RekhaP.D.ArunA.B.ShenF.T.LaiW.A.YoungC.C.2006Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilitiesApplied Soil Ecology3413341https://doi.org/10.1016/j.apsoil.2005.12.002Search in Google Scholar
Compant S., Clément C., & Sessitsch A., 2012. Plant growth-promoting bacteria in therhizome- and endosphere of plants: Their role, colonization, mechanisms involved andprospects for utilization. Soil Biology and Biochemistry, 42(5): 669–678, https://doi.org/10.1016/j.soilbio.2009.11.024.CompantS.ClémentC.SessitschA.2012Plant growth-promoting bacteria in therhizome- and endosphere of plants: Their role, colonization, mechanisms involved andprospects for utilizationSoil Biology and Biochemistry425669678https://doi.org/10.1016/j.soilbio.2009.11.024Search in Google Scholar
da Cunha E.T., Pedrolo A.M., Bueno J.C.F. et al., 2022. Inoculation of Herbaspirillum seropedicae strain SmR1 increases biomass in maize roots DKB 390 variety in the early stages of plant development. Archives of Microbiology, 204: 373, https://doi.org/10.1007/s00203-022-02986-8.da CunhaE.T.PedroloA.M.BuenoJ.C.F.2022Inoculation of Herbaspirillum seropedicae strain SmR1 increases biomass in maize roots DKB 390 variety in the early stages of plant developmentArchives of Microbiology204373https://doi.org/10.1007/s00203-022-02986-8Search in Google Scholar
da Silva L.I., Pereira M.C., de Carvalho A.M.X., Buttrós V.H., Pasqual M., Dória J., 2023. Phosphorus-Solubilizing Microorganisms: A Key to Sustainable Agriculture. Agriculture, 13(2): 1–33, https://doi.org/10.3390/agriculture13020462.da SilvaL.I.PereiraM.C.de CarvalhoA.M.X.ButtrósV.H.PasqualM.DóriaJ.2023Phosphorus-Solubilizing Microorganisms: A Key to Sustainable AgricultureAgriculture132133https://doi.org/10.3390/agriculture13020462Search in Google Scholar
Daniel A.I., Fadaka A.O., Gokul A., Bakare O.O., Aina O., Fisher S., Klein A., 2022. Biofertilizer: the future of food security and food safety. Microorganisms, 10(6): 1220, https://doi.org/10.3390/microorganisms10061220.DanielA.I.FadakaA.O.GokulA.BakareO.O.AinaO.FisherS.KleinA.2022Biofertilizer: the future of food security and food safetyMicroorganisms1061220https://doi.org/10.3390/microorganisms10061220Search in Google Scholar
Etesami H., Emami S., Alikhani H.A., 2017. Potassium solubilizing bacteria (KSB): Mechanisms, promotion of plant growth, and future prospects A review. Journal of Soil Science and Plant Nutrition, 17(4): 897–911, https://doi.org/10.4067/S0718-95162017000400005.EtesamiH.EmamiS.AlikhaniH.A.2017Potassium solubilizing bacteria (KSB): Mechanisms, promotion of plant growth, and future prospects A reviewJournal of Soil Science and Plant Nutrition174897911https://doi.org/10.4067/S0718-95162017000400005Search in Google Scholar
FAO, 2020. https://www.fao.org/sustainability/news/detail/en/c/1274219/
(accessed on 14 November 2024).FAO2020https://www.fao.org/sustainability/news/detail/en/c/1274219/ (accessed on 14 November 2024)
FAOSTAT, 2024. https://www.fao.org/faostat/en/#data/RFN (accessed on 14 November 2024).FAOSTAT2024https://www.fao.org/faostat/en/#data/RFN (accessed on 14 November 2024).Search in Google Scholar
Fibach-Paldi S., Burdman Y., Okon Y., 2011. Key physiological properties contributing to rhizosphere adaptation and plant growth promotion abilities of Azospirillum brasilense FEMS Microbiology Letters, 326: 99–108, https://doi.org/10.1111/j.1574-6968.2011.02407.x.Fibach-PaldiS.BurdmanY.OkonY.2011Key physiological properties contributing to rhizosphere adaptation and plant growth promotion abilities of Azospirillum brasilenseFEMS Microbiology Letters32699108https://doi.org/10.1111/j.1574-6968.2011.02407.xSearch in Google Scholar
Fierer N., Lauber C.L., Ramirez K.S., Zaneveld J., Bradford M.A., Knight R., 2012. Comparative metagenomic, phylo-genetic and physiological analyses of soil microbial communities across nitrogen gradients. International Society for Microbial Ecology, 6: 1007–1017, https://doi.org/10.1038/ismej.2011.159.FiererN.LauberC.L.RamirezK.S.ZaneveldJ.BradfordM.A.KnightR.2012Comparative metagenomic, phylo-genetic and physiological analyses of soil microbial communities across nitrogen gradientsInternational Society for Microbial Ecology610071017https://doi.org/10.1038/ismej.2011.159Search in Google Scholar
Fukami J., Nogueira M. A., Araujo R. S., Hungria M., 2016. Accessing inoculation methods of maize and wheat with Azospirillum brasilense. AMB Express 6: 3–16, https://doi.org/10.1186/s13568-015-0171-y.FukamiJ.NogueiraM. A.AraujoR. S.HungriaM.2016Accessing inoculation methods of maize and wheat with Azospirillum brasilenseAMB Express6316https://doi.org/10.1186/s13568-015-0171-ySearch in Google Scholar
Gallon J. R., 2001. N2 fixation in phototrophs: adaptation to a specialized way of life. Plant and Soil, 230: 39–48, https://doi.org/10.1023/A:1004640219659.GallonJ. R.2001N2 fixation in phototrophs: adaptation to a specialized way of lifePlant and Soil2303948https://doi.org/10.1023/A:1004640219659Search in Google Scholar
Gao H., Yang D., Yang L., Han S., Liu G., Tang L., et al., 2023. Co-inoculation with Sinorhizobium meliloti and Enterobacter ludwigii improves the yield, nodulation, and quality of alfalfa (Medicago sativa L.) under saline-alkali environments. Industrial Crops and Products, 199: 116818, https://doi.org/10.1016/j.indcrop.2023.116818.GaoH.YangD.YangL.HanS.LiuG.TangL.2023Co-inoculation with Sinorhizobium meliloti and Enterobacter ludwigii improves the yield, nodulation, and quality of alfalfa (Medicago sativa L.) under saline-alkali environmentsIndustrial Crops and Products199116818https://doi.org/10.1016/j.indcrop.2023.116818Search in Google Scholar
Gaur R., Shani N., Kawaljeet Johri B. N., Rossi P., Aragno M., 2004. Diacetylphloroglucinol-producing pseudomonads do not influence AM fungi in wheat rhizosphere. Current Science, 86(3): 453–457.GaurR.ShaniN.Kawaljeet JohriB. N.RossiP.AragnoM.2004Diacetylphloroglucinol-producing pseudomonads do not influence AM fungi in wheat rhizosphereCurrent Science863453457Search in Google Scholar
Gautam A., Sekaran U., Guzman J., Kovács P., Hernandez J. L. G., Kumar S., 2020. Responses of soil microbial community structure and enzymatic activities to long-term application of mineral fertilizer and beef manure. Environmental and Sustainability Indicators, 8: 100073, https://doi.org/10.1016/j.indic.2020.100073.GautamA.SekaranU.GuzmanJ.KovácsP.HernandezJ. L. G.KumarS.2020Responses of soil microbial community structure and enzymatic activities to long-term application of mineral fertilizer and beef manureEnvironmental and Sustainability Indicators8100073https://doi.org/10.1016/j.indic.2020.100073Search in Google Scholar
Ghosh S., Mondal S., Banerjee S., Mukherjee A., Bhattacharyya P., 2023. Temporal dynamics of potassium release from waste mica as influenced by potassium mobilizing bacteria. Journal of Pure and Applied Microbiology, 17(1): 273–288, https://doi.org/10.22207/JPAM.17.1.17GhoshS.MondalS.BanerjeeS.MukherjeeA.BhattacharyyaP.2023Temporal dynamics of potassium release from waste mica as influenced by potassium mobilizing bacteriaJournal of Pure and Applied Microbiology171273288https://doi.org/10.22207/JPAM.17.1.17Search in Google Scholar
Glick B.R. 2015. Beneficial Plant-Bacterial Interactions. Springer, Berlin/Heidelberg, Germany, https://doi.org/10.1007/978-3-319-13921-0.GlickB.R.2015Beneficial Plant-Bacterial InteractionsSpringerBerlin/Heidelberg, Germanyhttps://doi.org/10.1007/978-3-319-13921-0Search in Google Scholar
Grzyb A., Wolna-Maruwka A., Niewiadomska A., 2021. The significance of microbial transformation of nitrogen compounds in the light of integrated crop management. Agronomy, 11(7):1415, https://doi.org/10.3390/agronomy11071415.GrzybA.Wolna-MaruwkaA.NiewiadomskaA.2021The significance of microbial transformation of nitrogen compounds in the light of integrated crop managementAgronomy1171415https://doi.org/10.3390/agronomy11071415Search in Google Scholar
Gu Y., Wang J., Cai W., Li G., Mei Y., Yang S., 2021. Different amounts of nitrogen fertilizer applications alter the bacterial diversity and community structure in the rhizosphere soil of sugarcane. Frontiers in Microbiology, 12: 721441, https://doi.org/10.3389/fmicb.2021.721441.GuY.WangJ.CaiW.LiG.MeiY.YangS.2021Different amounts of nitrogen fertilizer applications alter the bacterial diversity and community structure in the rhizosphere soil of sugarcaneFrontiers in Microbiology12721441https://doi.org/10.3389/fmicb.2021.721441Search in Google Scholar
Ibrahim M., Iqbal M., Tang Y.T., Khan S., Guan D.X., Li G., 2022. Phosphorus mobilization in plant–soil environments and inspired strategies for managing phosphorus: A review. Agronomy, 12(10): 2539, https://doi.org/10.3390/agronomy12102539.IbrahimM.IqbalM.TangY.T.KhanS.GuanD.X.LiG.2022Phosphorus mobilization in plant–soil environments and inspired strategies for managing phosphorus: A reviewAgronomy12102539https://doi.org/10.3390/agronomy12102539Search in Google Scholar
Islam F., Yasmeen T., Ali Q., Ali S., Arif M. S., Hussain S., & Rizvi H., 2016. Plant growth promoting rhizobacteria: challenges and opportunities for agricultural sustainability. Frontiers in Microbiology, 7, 1472.IslamF.YasmeenT.AliQ.AliS.ArifM. S.HussainS.RizviH.2016Plant growth promoting rhizobacteria: challenges and opportunities for agricultural sustainabilityFrontiers in Microbiology71472Search in Google Scholar
James E.K., 2000. Nitrogen fixation in endophytic and associative symbiosis. Field Crops Research, 65(2–3): 197–209, https://doi.org/10.1016/S0378-4290(99)00087-8.JamesE.K.2000Nitrogen fixation in endophytic and associative symbiosisField Crops Research652–3197209https://doi.org/10.1016/S0378-4290(99)00087-8Search in Google Scholar
Jini D., Ganga V.S., Greeshma M.B., Sivashankar R., Thirunavukkarasu A., 2023. Sustainable agricultural practices using potassium-solubilizing microorganisms (KSMs) in coastal regions: a critical review on the challenges and opportunities. Environment, Development and Sustainability, 26(6): 13641–13664, https://doi.org/10.1007/s10668-023-03199-9.JiniD.GangaV.S.GreeshmaM.B.SivashankarR.ThirunavukkarasuA.2023Sustainable agricultural practices using potassium-solubilizing microorganisms (KSMs) in coastal regions: a critical review on the challenges and opportunitiesEnvironment, Development and Sustainability2661364113664https://doi.org/10.1007/s10668-023-03199-9Search in Google Scholar
Johnson R., Vishwakarma K., Hossen MdS., Kumar V., Hasanuzzaman M., 2022. Potassium in plants: growth regulation, signaling, and environmental stress tolerance. Plant Physiology and Biochemistry, 172: 56–69, https://doi.org/10.1016/j.plaphy.2022.01.001.JohnsonR.VishwakarmaK.HossenMdS.KumarV.HasanuzzamanM.2022Potassium in plants: growth regulation, signaling, and environmental stress tolerancePlant Physiology and Biochemistry1725669https://doi.org/10.1016/j.plaphy.2022.01.001Search in Google Scholar
Kalayu G., 2019. Phosphate solubilizing microorganisms: promising approach as biofertilizers. International Journal of Agronomy, 1: 4917256, https://doi.org/10.1155/2019/4917256.KalayuG.2019Phosphate solubilizing microorganisms: promising approach as biofertilizersInternational Journal of Agronomy14917256https://doi.org/10.1155/2019/4917256Search in Google Scholar
Khan A.A., Jilani G., Akhtar M.S., Naqvi S.S., Rasheed M., 2009. Phosphorus Solubilizing Bacteria: occurrence, mechanisms and their role in crop production. Journal of Agricultural and Biological Sciences, 1: 48–58.KhanA.A.JilaniG.AkhtarM.S.NaqviS.S.RasheedM.2009Phosphorus Solubilizing Bacteria: occurrence, mechanisms and their role in crop productionJournal of Agricultural and Biological Sciences14858Search in Google Scholar
Kirkby E., 2012. Introduction, Definition and Classification of Nutrients. In: Marschner P., (Ed.) Marschner’s Mineral Nutrition of Higher Plants, 3rd edn. San Diego Academic Press ISBN : 978-0-12-384905-2.KirkbyE.2012Introduction, Definition and Classification of NutrientsIn:MarschnerP.(Ed.)Marschner’s Mineral Nutrition of Higher Plants3rd ednSan Diego Academic Press978-0-12-384905-2Search in Google Scholar
Kour D., Rana K.L., Yadav A.N., Yadav N., Kumar M., Kumar V., et al., 2020. Microbial biofertilizers: Bioresources and eco-friendly technologies for agricultural and environmental sustainability. Biocatalysis and Agricultural Biotechnology, 23: 101487, https://doi.org/10.1016/j.bcab.2019.101487.KourD.RanaK.L.YadavA.N.YadavN.KumarM.KumarV.2020Microbial biofertilizers: Bioresources and eco-friendly technologies for agricultural and environmental sustainabilityBiocatalysis and Agricultural Biotechnology23101487https://doi.org/10.1016/j.bcab.2019.101487Search in Google Scholar
Koźmińska A., Hassan M.A., Halecki W., Kruszyna C., Hanus-Fajerska E., 2024. Beneficial Microorganisms: Sulfur-Oxidizing Bacteria Modulate Salt and Drought Stress Responses in the Halophyte Plantago coronopus L. Sustainability 16(24): 2071–1050, https://doi.org/10.3390/su162410866.KoźmińskaA.HassanM.A.HaleckiW.KruszynaC.Hanus-FajerskaE.2024Beneficial Microorganisms: Sulfur-Oxidizing Bacteria Modulate Salt and Drought Stress Responses in the Halophyte Plantago coronopus LSustainability162420711050https://doi.org/10.3390/su162410866Search in Google Scholar
Kramer J., Özkaya Ö., Kümmerli R., 2020. Bacterial siderophores in community and host interactions. Nature Reviews Microbiology, 18(3): 152–163, https://doi.org/10.1038/s41579-019-0284-4.KramerJ.ÖzkayaÖ.KümmerliR.2020Bacterial siderophores in community and host interactionsNature Reviews Microbiology183152163https://doi.org/10.1038/s41579-019-0284-4Search in Google Scholar
Krasilnikov P., Taboada M. A., 2022. Fertilizer Use, Soil Health and Agricultural Sustainability. Agriculture, 12(4): 462, https://doi.org/10.3390/agriculture12040462.KrasilnikovP.TaboadaM. A.2022Fertilizer Use, Soil Health and Agricultural SustainabilityAgriculture124462https://doi.org/10.3390/agriculture12040462Search in Google Scholar
Kroh G.E., Pilon M., 2020. Regulation of iron homeostasis and use in chloroplasts. International Journal of Molecular Sciences, 21(9): 3395, https://doi.org/10.3390/ijms21093395.KrohG.E.PilonM.2020Regulation of iron homeostasis and use in chloroplastsInternational Journal of Molecular Sciences2193395https://doi.org/10.3390/ijms21093395Search in Google Scholar
Król M., 2006.Azospirillum – asocjacyjne bakterie wiążące azot. In: Monografie i rozprawy naukowe, IUNG-PIB, Puławy, 15: 45–55, 66–74.KrólM.2006Azospirillum – asocjacyjne bakterie wiążące azotIn:Monografie i rozprawy naukoweIUNG-PIBPuławy1545556674Search in Google Scholar
Kumar S., Sindhu S.S., Kumar R., 2021. Biofertilizers: An eco-friendly technology for nutrient recycling and environmental sustainability. Current Research in Microbial Sciences, 100094, https://doi.org/10.1016/j.crmicr.2021.100094.KumarS.SindhuS.S.KumarR.2021Biofertilizers: An eco-friendly technology for nutrient recycling and environmental sustainabilityCurrent Research in Microbial Sciences100094https://doi.org/10.1016/j.crmicr.2021.100094Search in Google Scholar
Lalitha S., 2017. Plant growth-promoting microbes: a boon for sustainable agriculture. In: Sustainable Agriculture towards Food Security; (Ed.) Dhanarajan A., Springer Singapore, Singapore, pp. 125–158, https://doi.org/10.1007/978-981-10-6647-4_8.LalithaS.2017Plant growth-promoting microbes: a boon for sustainable agricultureIn:Sustainable Agriculture towards Food Security(Ed.)DhanarajanA.Springer SingaporeSingapore125158https://doi.org/10.1007/978-981-10-6647-4_8Search in Google Scholar
Lenart A., 2012. Occurrence, characteristics, and genetic diversity of Azotobacter chroococcum in various soils of Southern Poland. Polish Journal of Environmental Studies, 21(2): 415–424.LenartA.2012Occurrence, characteristics, and genetic diversity of Azotobacter chroococcum in various soils of Southern PolandPolish Journal of Environmental Studies212415424Search in Google Scholar
Luna M.F., Galar M.L., Aprea J., Molinari M.L., Boiardi J. L., 2010. Colonization of sorghum and wheat by seed inoculation with Gluconacetobacter diazotrophicus. Biotechnology Letters, 32: 1071–1076, https://doi.org/10.1007/s10529-010-0256-2.LunaM.F.GalarM.L.ApreaJ.MolinariM.L.BoiardiJ. L.2010Colonization of sorghum and wheat by seed inoculation with Gluconacetobacter diazotrophicusBiotechnology Letters3210711076https://doi.org/10.1007/s10529-010-0256-2Search in Google Scholar
Łyszcz M., Gałązka A., 2016. Proces biologicznego wiązania azotu atmosferycznego. In: Studia i Raporty IUNG-PIB – Siedliskowe i agrotechniczne uwarunkowania produkcji roślinnej w Polsce; (Ed.) Podleśny J., 49(3), ISBN 978 83 7562 234 8, Puławy, Dział Upowszechniania i Wydawnictw IUNG - PIB w Puławach, pp. 59–70.ŁyszczM.GałązkaA.2016Proces biologicznego wiązania azotu atmosferycznegoIn:Studia i Raporty IUNG-PIB – Siedliskowe i agrotechniczne uwarunkowania produkcji roślinnej w Polsce(Ed.)PodleśnyJ.493978 83 7562 234 8Puławy, Dział Upowszechniania i Wydawnictw IUNG - PIB w Puławach5970Search in Google Scholar
Madhaiyan M., dhya T.K., 2014. Application of microbe-based inoculants in sustainable rice production to reduce environmental pollution and improve grain yield and soil fertility. Environmental Microbiology Reports, 6(5): 448–458.MadhaiyanM.dhyaT.K.2014Application of microbe-based inoculants in sustainable rice production to reduce environmental pollution and improve grain yield and soil fertilityEnvironmental Microbiology Reports65448458Search in Google Scholar
Mander C., Wakelin S., Young S., Condron L., O’Callaghan M., 2012. Incidence and diversity of phosphate-solubilising bacteria are linked to phosphorus status in grassland soils. Soil Biology and Biochemistry, 44: 93–101, https://doi.org/10.1016/j.soilbio.2011.09.009.ManderC.WakelinS.YoungS.CondronL.O’CallaghanM.2012Incidence and diversity of phosphate-solubilising bacteria are linked to phosphorus status in grassland soilsSoil Biology and Biochemistry4493101https://doi.org/10.1016/j.soilbio.2011.09.009Search in Google Scholar
Mazahar S., Umar S., 2022. Soil potassium availability and role of microorganisms in influencing potassium availability to plants. In: Role of potassium in abiotic stress; (Eds) Iqbal N., Umar S., Springer, Singapore.MazaharS.UmarS.2022Soil potassium availability and role of microorganisms in influencing potassium availability to plantsIn:Role of potassium in abiotic stress(Eds)IqbalN.UmarS.SpringerSingaporeSearch in Google Scholar
Mishra P.K., Joshi P.I.Y.U.S.H., Suyal P.R.E.E.T.I., Bisht J. K., Bhatt J.C., 2014. Potential of phosphate solubilising microorganisms in crop production. Bioresources for Sustainable Plant Nutrient Management, 8: 201–212.MishraP.K.JoshiP.I.Y.U.S.H.SuyalP.R.E.E.T.I.BishtJ. K.BhattJ.C.2014Potential of phosphate solubilising microorganisms in crop productionBioresources for Sustainable Plant Nutrient Management8201212Search in Google Scholar
Mishra P., Dash D., 2014. Rejuvenation of biofertilizer for sustainable agriculture and economic development. Consilience, (11): 41–61.
MishraP.DashD.2014Rejuvenation of biofertilizer for sustainable agriculture and economic developmentConsilience114161Search in Google Scholar
Mitter E.K., Tosi M., Obregón D., Dunfield K.E., Germida J.J., 2021. Rethinking crop nutrition in times of modern microbiology: innovative biofertilizer technologies. Frontiers in Sustainable Food Systems. 5: 606815, https://doi.org/10.3389/fsufs.2021.606815.MitterE.K.TosiM.ObregónD.DunfieldK.E.GermidaJ.J.2021Rethinking crop nutrition in times of modern microbiology: innovative biofertilizer technologiesFrontiers in Sustainable Food Systems5606815https://doi.org/10.3389/fsufs.2021.606815Search in Google Scholar
Montero-Palmero B., Lucas J.A., Montalbán B., García-Villaraco A., Gutierrez-Mañero J., Ramos-Solano B., 2024. Iron Deficiency in Tomatoes Reversed by Pseudomonas Strains: A Synergistic Role of Siderophores and Plant Gene Activation. Plants, 13(24): 3585, https://doi.org/10.3390/plants13243585.
Montero-PalmeroB.LucasJ.A.MontalbánB.García-VillaracoA.Gutierrez-MañeroJ.Ramos-SolanoB.2024Iron Deficiency in Tomatoes Reversed by Pseudomonas Strains: A Synergistic Role of Siderophores and Plant Gene ActivationPlants13243585https://doi.org/10.3390/plants13243585Search in Google Scholar
Moraditochaee M., Azarpour E., Bozorgi H.R., 2014. Study effects of bio-fertilizers, nitrogen fertilizer and farmyard manure on yield and physiochemical properties of soil in lentil farming. International Journal of Biosciences, 4: 41–48.MoraditochaeeM.AzarpourE.BozorgiH.R.2014Study effects of bio-fertilizers, nitrogen fertilizer and farmyard manure on yield and physiochemical properties of soil in lentil farmingInternational Journal of Biosciences44148Search in Google Scholar
OECD Glossary of Statistical Terms, 2008. https://stats.oecd.org/glossary/detail.asp?ID=947 (accessed on 14 November 2024).OECD Glossary of Statistical Terms2008https://stats.oecd.org/glossary/detail.asp?ID=947 (accessed on 14 November 2024)Search in Google Scholar
Olaniyan F.T., Alori E.T., Adekiya A.O., Ayorinde B.B., Daramola F.Y., Osemwegie O.O., Babalol O.O., 2022. The use of soil microbial potassium solubilizers in potassium nutrient availability in soil and its dynamics. Annals of Microbiology, 72(1): 45, https://doi.org/10.1186/s13213-022-01701-8.OlaniyanF.T.AloriE.T.AdekiyaA.O.AyorindeB.B.DaramolaF.Y.OsemwegieO.O.BabalolO.O.2022The use of soil microbial potassium solubilizers in potassium nutrient availability in soil and its dynamicsAnnals of Microbiology72145https://doi.org/10.1186/s13213-022-01701-8Search in Google Scholar
Pahalvi H. N., Rafiya L., Rashid S., Nisar B., Kamili A. N., 2021. Chemical Fertilizers and Their Impact on Soil Health. In: Dar G. H., Bhat R. A., Mehmood M.A., Hakeem K. R. (Eds) Microbiota and Biofertilizers, Vol 2. Springer, Cham. https://doi.org/10.1007/978-3-030-61010-4_1.PahalviH. N.RafiyaL.RashidS.NisarB.KamiliA. N.2021Chemical Fertilizers and Their Impact on Soil HealthIn:DarG. H.BhatR. A.MehmoodM.A.HakeemK. R.(Eds)Microbiota and Biofertilizers2SpringerChamhttps://doi.org/10.1007/978-3-030-61010-4_1Search in Google Scholar
Priya A., Adhikary S., 2020. Biofertilizers Towards Sustainable Agriculture and Environment Development. AGRICULTURE & FOOD: e-NEWSLETTER.PriyaA.AdhikaryS.2020Biofertilizers Towards Sustainable Agriculture and Environment DevelopmentAGRICULTURE & FOOD: e-NEWSLETTERSearch in Google Scholar
Rai P.K., Rai A., Sharma N.K., Singh T., Kumar Y., 2023. Limitations of biofertilizers and their revitalization through nanotechnology. Journal of Cleaner Production, 418: 138194, https://doi.org/10.1016/j.jclepro.2023.138194.RaiP.K.RaiA.SharmaN.K.SinghT.KumarY.2023Limitations of biofertilizers and their revitalization through nanotechnologyJournal of Cleaner Production418138194https://doi.org/10.1016/j.jclepro.2023.138194Search in Google Scholar
Rajani G., Latha P.C., Sundaram R.M., Phule A.S., Prasad Babu K.V., Barbadikar K.M., Prasad Babu M.B.B., Mandal P.K,. Surekha Rani H., 2023. Effect of Plant Growth Promoting Endophytic Bacteria Gluconacetobacter diazotrophicus, on Germination Attributes and Seedling Growth of Rice Varieties under In vitro. International Journal of Plant and Soil Science, 35(20): 62–71. https://doi.org/10.9734/IJPSS/2023/v35i203786.RajaniG.LathaP.C.SundaramR.M.PhuleA.S.Prasad BabuK.V.BarbadikarK.M.Prasad BabuM.B.B.MandalP.K.Surekha RaniH.2023Effect of Plant Growth Promoting Endophytic Bacteria Gluconacetobacter diazotrophicus, on Germination Attributes and Seedling Growth of Rice Varieties under In vitroInternational Journal of Plant and Soil Science35206271https://doi.org/10.9734/IJPSS/2023/v35i203786Search in Google Scholar
Rawat P., Das S., Shankhdhar D., Shankhdhar S.C., 2021. Phosphate-Solubilizing Microorganisms: Mechanism and Their Role in Phosphate Solubilization and Uptake. Journal of Soil Science and Plant Nutrition, 21: 49–68, https://doi.org/10.3390/biology10020158.RawatP.DasS.ShankhdharD.ShankhdharS.C.2021Phosphate-Solubilizing Microorganisms: Mechanism and Their Role in Phosphate Solubilization and UptakeJournal of Soil Science and Plant Nutrition214968https://doi.org/10.3390/biology10020158Search in Google Scholar
Ritika B., Utpal D., 2014. Biofertilizer, a way towards organic agriculture: a review. African Journal of Microbiology Research, 8: 2332–2343, https://doi.org/10.5897/AJMR2013.6374.RitikaB.UtpalD.2014Biofertilizer, a way towards organic agriculture: a reviewAfrican Journal of Microbiology Research823322343https://doi.org/10.5897/AJMR2013.6374Search in Google Scholar
Romero-Perdomo F., Abril J., Camelo M., Moreno-Galván A., Pastrana I., Rojas-Tapias D., Bonilla R. 2017.Azotobacter chroococcum as a potentially useful bacterial biofertilizer for cotton (Gossypium hirsutum): Effect in reducing N fertilization. Revista Argentina de Microbiologia, 49(4):377–383, https://doi.org/10.1016/j.ram.2017.04.006.Romero-PerdomoF.AbrilJ.CameloM.Moreno-GalvánA.PastranaI.Rojas-TapiasD.BonillaR.2017Azotobacter chroococcum as a potentially useful bacterial biofertilizer for cotton (Gossypium hirsutum): Effect in reducing N fertilizationRevista Argentina de Microbiologia494377383https://doi.org/10.1016/j.ram.2017.04.006Search in Google Scholar
Rout G. R., Sahoo S., 2015. Role of iron in plant growth and metabolism. Reviews in Agricultural Science, 3: 1–24, https://doi.org/10.7831/ras.3.1.RoutG. R.SahooS.2015Role of iron in plant growth and metabolismReviews in Agricultural Science3124https://doi.org/10.7831/ras.3.1Search in Google Scholar
Santini G., Rodolfi L., Biondi N., Sampietro G., Tredici M.R., 2022. Effects of cyanobacterial-based biostimulants on plant growth and development: a case study on basil (Ocimum basilicum L.). Journal of Applied Phycology, 34(4): 2063–2073, https://doi.org/10.1007/s10811-022-02781-4.SantiniG.RodolfiL.BiondiN.SampietroG.TrediciM.R.2022Effects of cyanobacterial-based biostimulants on plant growth and development: a case study on basil (Ocimum basilicum L.)Journal of Applied Phycology34420632073https://doi.org/10.1007/s10811-022-02781-4Search in Google Scholar
Sattar A., Naveed M., Ali M., Zahir Z.A., Nadeem S.M., Yaseen M., Meena H.N., 2019. Perspectives of potassium solubilizing microbes in sustainable food production system: A review. Applied Soil Ecology, 133: 146–159, https://doi.org/10.1016/j.apsoil.2018.09.012.SattarA.NaveedM.AliM.ZahirZ.A.NadeemS.M.YaseenM.MeenaH.N.2019Perspectives of potassium solubilizing microbes in sustainable food production system: A reviewApplied Soil Ecology133146159https://doi.org/10.1016/j.apsoil.2018.09.012Search in Google Scholar
Seshachala U., Tallapragada P., 2012. Phosphate solubilizers from the rhizosphere of Piper nigrum L. in Karnataka, India. Chilean Journal of Agricultural Research, 72: 397–403, https://doi.org/10.4067/S0718-58392012000300014.SeshachalaU.TallapragadaP.2012Phosphate solubilizers from the rhizosphere of Piper nigrum L. in Karnataka, IndiaChilean Journal of Agricultural Research72397403https://doi.org/10.4067/S0718-58392012000300014Search in Google Scholar
Sharma R., Sindhu S.S. Glick B.R., 2024. Potassium Solubilizing Microorganisms as Potential Biofertilizer: A Sustainable Climate-Resilient Approach to Improve Soil Fertility and Crop Production in Agriculture. Journal of Plant Growth Regulation, 43: 2503–2535 (2024). https://doi.org/10.1007/s00344-024-11297-9.SharmaR.SindhuS.S.GlickB.R.2024Potassium Solubilizing Microorganisms as Potential Biofertilizer: A Sustainable Climate-Resilient Approach to Improve Soil Fertility and Crop Production in AgricultureJournal of Plant Growth Regulation43250325352024https://doi.org/10.1007/s00344-024-11297-9Search in Google Scholar
Shrivastava M., Srivastava P.C., D’Souza S.F., 2018. Phosphate-Solubilizing Microbes: Diversity and Phosphates Solubilization Mechanism. In Meena V., (Ed.), Rhizospheric Microbes in Soil. Springer, Singapore, pp. 137–165.ShrivastavaM.SrivastavaP.C.D’SouzaS.F.2018Phosphate-Solubilizing Microbes: Diversity and Phosphates Solubilization MechanismInMeenaV.(Ed.)Rhizospheric Microbes in SoilSpringerSingapore137165Search in Google Scholar
Siebielec S., Kozieł M., Woźniak M., Siebielec G., 2021. Mikroorganizmy solubilizujące fosforany – znaczenie w rolnictwie i remediacji. In: Monografie i rozprawy naukowe IUNG-PIB; Podleśny J., Dział Upowszechniania i Wydawnictw IUNG - PIB w Puławach, 63, ISBN 978-83-7562-360-4, pp. 7–85.SiebielecS.KoziełM.WoźniakM.SiebielecG.2021Mikroorganizmy solubilizujące fosforany – znaczenie w rolnictwie i remediacjiIn:Monografie i rozprawy naukowe IUNG-PIBPodleśnyJ.Dział Upowszechniania i Wydawnictw IUNG - PIB w Puławach63978-83-7562-360-4785Search in Google Scholar
Singh S.K., Wu X., Shao C., Zhang H., 2022. Microbial enhancement of plant nutrient acquisition. Stress Biology, 2(1), 3, https://doi.org/10.1007/s44154-021-00027-w.SinghS.K.WuX.ShaoC.ZhangH.2022Microbial enhancement of plant nutrient acquisitionStress Biology213https://doi.org/10.1007/s44154-021-00027-wSearch in Google Scholar
Soumare A., Sarr D., Diedhiou A.G., 2022. Potassium sources, microorganisms, and plant nutrition – challenges and future research directions: a review. Pedosphere, 33(1): 105–115, https://doi.org/10.1016/j.pedsph.2022.06.025.SoumareA.SarrD.DiedhiouA.G.2022Potassium sources, microorganisms, and plant nutrition – challenges and future research directions: a reviewPedosphere331105115https://doi.org/10.1016/j.pedsph.2022.06.025Search in Google Scholar
Sparks D.L., Huang P.M., 1985. Physical chemistry of soil potassium. In: Potassium in agriculture; (Ed.) Munson R.D., ASA CSSA and SSSA, Madison, pp. 201–265.SparksD.L.HuangP.M.1985Physical chemistry of soil potassiumIn:Potassium in agriculture(Ed.)MunsonR.D.ASA CSSA and SSSAMadison201265Search in Google Scholar
Sultana S., Alam S., Karim M.M., 2021. Screening of Siderophore-Producing Salt-Tolerant Rhizobacteria Suitable for Supporting Plant Growth in Saline Soils with Iron Limitation. Journal of Agriculture and Food Research, 4:100150, https://doi.org/10.1016/j.jafr.2021.100150.SultanaS.AlamS.KarimM.M.2021Screening of Siderophore-Producing Salt-Tolerant Rhizobacteria Suitable for Supporting Plant Growth in Saline Soils with Iron LimitationJournal of Agriculture and Food Research4100150https://doi.org/10.1016/j.jafr.2021.100150Search in Google Scholar
Sumbul A., Ansari R.A., Rizvi R., Mahmood I., 2020.Azotobacter: A potential bio-fertilizer for soil and plant health management. Saudi Journal of Biological Sciences, 27(12): 3634–3640, https://doi.org/10.1016/j.sjbs.2020.08.004.SumbulA.AnsariR.A.RizviR.MahmoodI.2020Azotobacter: A potential bio-fertilizer for soil and plant health managementSaudi Journal of Biological Sciences271236343640https://doi.org/10.1016/j.sjbs.2020.08.004Search in Google Scholar
Sun F., Ou Q., Wang N., Xuan Guo Z., Ou Y., Li N., Peng C., 2020. Isolation and identification of potassium-solubilizing bacteria from Mikania micrantha rhizospheric soil and their effect on M. micrantha plants. Global Ecology and Conservation, 23, e01141, https://doi.org/10.1016/j.gecco.2020.e01141.SunF.OuQ.WangN.Xuan GuoZ.OuY.LiN.PengC.2020Isolation and identification of potassium-solubilizing bacteria from Mikania micrantha rhizospheric soil and their effect on M. micrantha plantsGlobal Ecology and Conservation23e01141https://doi.org/10.1016/j.gecco.2020.e01141Search in Google Scholar
Sun R., Zhang P., Riggins C.R., Zabaloy M.C., Rodríguez-Zas S., Villamil M.B., 2019. Long-term N fertilization decreased diversity and altered the composition of soil bacterial and archaeal communities. Agronomy, 9:574, https://doi.org/10.3390/agronomy9100574.SunR.ZhangP.RigginsC.R.ZabaloyM.C.Rodríguez-ZasS.VillamilM.B.2019Long-term N fertilization decreased diversity and altered the composition of soil bacterial and archaeal communitiesAgronomy9574https://doi.org/10.3390/agronomy9100574Search in Google Scholar
Thomas L., Singh I., 2019. Microbial Biofertilizers: Types and Applications. In: Biofertilizers for Sustainable Agriculture and Environment; (Eds.) Giri B., Prasad R., Wu Q. S., Varma A.; Soil Biology, vol 55. Springer, Cham, https://doi.org/10.1007/978-3-030-18933-4_1.ThomasL.SinghI.2019Microbial Biofertilizers: Types and ApplicationsIn: Biofertilizers for Sustainable Agriculture and Environment(Eds.)GiriB.PrasadR.WuQ. S.VarmaA.Soil Biology55SpringerChamhttps://doi.org/10.1007/978-3-030-18933-4_1Search in Google Scholar
Timofeeva A., Galyamova M., Sedykh S., 2022a. Prospects for using phosphate-solubilizing microorganisms as natural fertilizers in agriculture. Plants, 11(16): 2119, https://doi.org/10.3390/plants11162119.TimofeevaA.GalyamovaM.SedykhS.2022aProspects for using phosphate-solubilizing microorganisms as natural fertilizers in agriculturePlants11162119https://doi.org/10.3390/plants11162119Search in Google Scholar
Timofeeva A.M., Galyamova M.R., Sedykh S.E. 2022b. Bacterial siderophores: classification, biosynthesis, perspectives of use in agriculture. Plants, 11(22): 3065, https://doi.org/10.3390/plants11223065.TimofeevaA.M.GalyamovaM.R.SedykhS.E.2022bBacterial siderophores: classification, biosynthesis, perspectives of use in agriculturePlants11223065https://doi.org/10.3390/plants11223065Search in Google Scholar
Uchida R., 2000. Essential nutrients for plant growth: nutrient functions and deficiency symptoms. Plant nutrient management in Hawaii’s Soils, 4: 31–55.UchidaR.2000Essential nutrients for plant growth: nutrient functions and deficiency symptomsPlant nutrient management in Hawaii’s Soils43155Search in Google Scholar
Wang C., Liu D., Bai E., 2018. Decreasing soil microbial diversity is associated with decreasing microbial biomass under nitrogen addition. Soil Biology & Biochemistry, 120: 126–133, https://doi.org/10.1016/j.soilbio.2018.02.003.WangC.LiuD.BaiE.2018Decreasing soil microbial diversity is associated with decreasing microbial biomass under nitrogen additionSoil Biology & Biochemistry120126133https://doi.org/10.1016/j.soilbio.2018.02.003Search in Google Scholar
Wang C., Pan G., Lu X., Qi W., 2023. Phosphorus solubilizing microorganisms: potential promoters of agricultural and environmental engineering. Frontiers in Bioengineering and Biotechnology, 11: 1181078, https://doi.org/10.3389/fbioe.2023.1181078.WangC.PanG.LuX.QiW.2023Phosphorus solubilizing microorganisms: potential promoters of agricultural and environmental engineeringFrontiers in Bioengineering and Biotechnology111181078https://doi.org/10.3389/fbioe.2023.1181078Search in Google Scholar
Wang R., Peng B., Huang K., 2015. The research progress of CO2 sequestration by algal bio-fertilizer in China. Journal of CO2 Utilization, 11: 67–70, https://doi.org/10.1016/j.jcou.2015.01.007.WangR.PengB.HuangK.2015The research progress of CO2 sequestration by algal bio-fertilizer in ChinaJournal of CO2 Utilization116770https://doi.org/10.1016/j.jcou.2015.01.007Search in Google Scholar
Wang Z., Zhang H., Liu L., Li S., Xie J., Xue X., Jiang Y., 2022. Screening of phosphate-solubilizing bacteria and their abilities of phosphorus solubilization and wheat growth promotion. BMC Microbiology, 22(1): 296, https://doi.org/10.1186/s12866-022-02715-7.WangZ.ZhangH.LiuL.LiS.XieJ.XueX.JiangY.2022Screening of phosphate-solubilizing bacteria and their abilities of phosphorus solubilization and wheat growth promotionBMC Microbiology221296https://doi.org/10.1186/s12866-022-02715-7Search in Google Scholar
Wang Q., Xiong D., Zhao P., Yu X., Tu B., Wang G., 2011. Effect of applying an arsenic-resistant and plant growth-promoting rhizobacterium to enhance soil arsenic phytoremediation by Populus deltoides LH05–17. Journal of Applied Microbiology, 111:1065–1074, https://doi.org/10.1111/j.1365-2672.2011.05142.x.WangQ.XiongD.ZhaoP.YuX.TuB.WangG.2011Effect of applying an arsenic-resistant and plant growth-promoting rhizobacterium to enhance soil arsenic phytoremediation by Populus deltoides LH05–17Journal of Applied Microbiology11110651074https://doi.org/10.1111/j.1365-2672.2011.05142.xSearch in Google Scholar
Wei G., Xuebin Q., Yatao X., Ping L., Mathias A., Yan Z., et al., 2018. Effects of reclaimed water irrigation on microbial diversity and composition of soil with reducing nitrogen fertilization. Water, 10: 365–381, https://doi.org/10.3390/w10040365.WeiG.XuebinQ.YataoX.PingL.MathiasA.YanZ.2018Effects of reclaimed water irrigation on microbial diversity and composition of soil with reducing nitrogen fertilizationWater10365381https://doi.org/10.3390/w10040365Search in Google Scholar
Woźniak M., Gałązka A., 2019. The rhizosphere microbiome and its beneficial effects on plants–current knowledge and perspectives. Postępy Mikrobiologii, 58(1): 59–69, https://doi.org/10.21307/PM-2019.58.1.059.WoźniakM.GałązkaA.2019The rhizosphere microbiome and its beneficial effects on plants–current knowledge and perspectivesPostępy Mikrobiologii5815969https://doi.org/10.21307/PM-2019.58.1.059Search in Google Scholar
WYKAZ NAWOZOWYCH PRODUKTÓW MIKROBIOLOGICZNYCH. https://www.iung.pl/wp-content/uploads/2025/04/wykaz_npm_25.04.2025.pdf.WYKAZ NAWOZOWYCH PRODUKTÓW MIKROBIOLOGICZNYCHhttps://www.iung.pl/wp-content/uploads/2025/04/wykaz_npm_25.04.2025.pdfSearch in Google Scholar
Yadav A., Yadav K., 2024. Challenges and opportunities in biofertilizer commercialization. SVOA Microbiology, 5(1):1–14, https://doi.org/10.58624/SVOAMB.2024.05.037.YadavA.YadavK.2024Challenges and opportunities in biofertilizer commercializationSVOA Microbiology51114https://doi.org/10.58624/SVOAMB.2024.05.037Search in Google Scholar
Yousaf M., Li J., Lu J., Ren T., Cong R., Fahad S., Li X., 2017. Effects of fertilization on crop production and nutrient-supplying capacity under rice-oilseed rape rotation system. Scientific Reports, 7(1): 1270, https://doi.org/10.1038/s41598-017-01412-0.YousafM.LiJ.LuJ.RenT.CongR.FahadS.LiX.2017Effects of fertilization on crop production and nutrient-supplying capacity under rice-oilseed rape rotation systemScientific Reports711270https://doi.org/10.1038/s41598-017-01412-0Search in Google Scholar
Zhao S-X., Deng Q-S., Jiang C-Y., Wu Q-S., Xue Y-B., Li G-L., Zhao J-J., Zhou N., 2023. Inoculation with potassium solubilizing bacteria and its effect on the medicinal characteristics of Parispolyphylla var yunnanensis. Agriculture, 13(1): 21, https://doi.org/10.3390/agriculture13010021.ZhaoS-X.DengQ-S.JiangC-Y.WuQ-S.XueY-B.LiG-L.ZhaoJ-J.ZhouN.2023Inoculation with potassium solubilizing bacteria and its effect on the medicinal characteristics of Parispolyphylla var yunnanensisAgriculture13121https://doi.org/10.3390/agriculture13010021Search in Google Scholar
Zhu F., Qu L., Hong X., Sun X., 2011. Isolation and characterization of a phosphate solubilizing halophilic bacterium Kushneria sp. YCWA18 from Daqiao Saltern on the coast of yellow sea of China. Evidence-Based Complementary and Alternative Medicine, 615032, https://doi.org/10.1155/2011/615032.ZhuF.QuL.HongX.SunX.2011Isolation and characterization of a phosphate solubilizing halophilic bacterium Kushneria sp. YCWA18 from Daqiao Saltern on the coast of yellow sea of ChinaEvidence-Based Complementary and Alternative Medicine615032https://doi.org/10.1155/2011/615032Search in Google Scholar