journal article May 25, 2024

Exploring Phosphate Solubilizing Bacterial Communities in Rhizospheres of Native and Exotic Forage Grasses in Alkaline-Sodic Soils of the Flooding Pampa

View at Publisher Save 10.1007/s00284-024-03704-x
Topics

No keywords indexed for this article. Browse by subject →

References
85
[1]
Hartman KJ (2018) Molecular and experimental approaches for exploring the role of the soil and root microbiome in agroecosystem functioning, in, University of Zurich. https://doi.org/10.5167/uzh-153068 10.5167/uzh-153068
[2]
Zuluaga MYA, Lima Milani KM, Azeredo Goncalves LS, Martinez de Oliveira AL (2020) Diversity and plant growth-promoting functions of diazotrophic/N-scavenging bacteria isolated from the soils and rhizospheres of two species of Solanum. PLoS One. https://doi.org/10.1371/journal.pone.0227422 10.1371/journal.pone.0227422
[3]
Plant Growth-Promoting Rhizobacteria: Context, Mechanisms of Action, and Roadmap to Commercialization of Biostimulants for Sustainable Agriculture

Rachel Backer, J. Stefan Rokem, Gayathri Ilangumaran et al.

Frontiers in Plant Science 2018 10.3389/fpls.2018.01473
[4]
Glick BR (2012) Plant growth-promoting bacteria: mechanisms and applications. Scientifica (Cairo) 2012:963401. https://doi.org/10.6064/2012/963401 10.6064/2012/963401
[5]
Bulgarelli D, Schlaeppi K, Spaepen S, Loren V, van Themaat E, Schulze-Lefert P (2013) Structure and functions of the bacterial microbiota of plants. Annu Rev Plant Biol 64:807–838 10.1146/annurev-arplant-050312-120106
[6]
Lugtenberg B, Kamilova F (2009) Plant-growth-promoting rhizobacteria. Annu Rev Microbiol 63:541–556 10.1146/annurev.micro.62.081307.162918
[7]
Goldstein A, Lester T, Brown J (2003) Research on the metabolic engineering of the direct oxidation pathway for extraction of phosphate from ore has generated preliminary evidence for PQQ biosynthesis in Escherichia coli as well as a possible role for the highly conserved region of quinoprotein dehydrogenases. Biochimica Et Biophysica Acta-Proteins and Proteomics 1647:266–271 10.1016/s1570-9639(03)00067-0
[9]
León RJC (1992) Río de la Plata Grasslands. En: Ecosystems of the World. 8 A. Natural Grasslands. Introduction and western hemisphere. Coupland, R.T.
[10]
Cid MS, Grecco RF, Oesterheld M, Paruelo JM, Cibils AF, Brizuela MA (2011) Grass-fed beef production systems of Argentina’s flooding pampas: Understanding ecosystem heterogeneity to improve livestock production. Outlook Agric 40:181–189 10.5367/oa.2011.0040
[11]
Ogle D, St. John L (2010) Plants for Saline to Sodic Soil Conditions. Volume 9A. Natural Resources Conservation Service; Boise, ID, USA. p. 10150. Plant Materials Technical Note
[12]
Adcock D, McNeill AM, McDonald GK, Armstrong RD (2007) Subsoil constraints to crop production on neutral and alkaline soils in south-eastern Australia: a review of current knowledge and management strategies. Aust J Exp Agric 47:1245–1261 10.1071/ea06250
[13]
Viglizzo EF, Pordomingo AJ, Castro MG, Lertora FA (2003) Environmental assessment of agriculture at a regional scale in the Pampas of Argentina. Environ Monit Assess 87:169–195 10.1023/a:1024654316879
[14]
Paz RC, Rocco RA, Reinoso H, Menendez AB, Pieckenstain FL, Ruiz OA (2012) Comparative study of alkaline, saline, and mixed saline-alkaline stresses with regard to their effects on growth, nutrient accumulation, and root morphology of Lotus tenuis. J Plant Growth Regul 31:448–459 10.1007/s00344-011-9254-4
[15]
Hidalgo L, Cauhepe M, Erni A (1998) Digestibilidad de materia seca y contenido de proteína bruta en especies de pastizal de la Pampa deprimida. Argentina Investigaciones Agrarias 13:165–177
[16]
Calsina M, Mc Lean G, Nenning F, Otondo J, Petruzzi H, Pizzio R, Pueyo JD, Ré AE, Ribotta A, Romero L (2014) Gramíneas forrajeras para el subtrópico y el semiárido central de la Argentina, INTA.
[17]
De León M (2004) Ampliando la frontera ganadera INTA, informe técnico n. º 1 2–29.
[18]
Guzmán L, Juárez V, Sortheix J (1989) Adaptación de forrajeras perennes introducidas en Tucumán (Argentina). Revista Industrial y Agrícola de Tucumán 65:195–212
[19]
Petruzzi H, Stritzler N, Adema E, Ferri C, Pagella J (2003) Mijo perenne-Panicum coloratum, EEA Anguil INTA, 1–28.
[20]
Otondo J (2011) Efectos de la introducción de especies megatérmicas sobre características agronómicas y edáficas de un ambiente halomórfico de la Pampa Inundable, in, Facultad de Agronomía, Universidad de Buenos Aires.
[21]
Bhardwaj D, Ansari MW, Sahoo RK, Tuteja N (2014) Biofertilizers function as key player in sustainable agriculture by improving soil fertility, plant tolerance and crop productivity. Microb Cell Fact 13:1–10 10.1186/1475-2859-13-66
[22]
Maldonado S, RodriguezA AB, MoralesP GMP, Angel JPAA, Olalde V, Bravo J, Jana C, Sierra C, Stoll A (2020) Enhanced crop productivity and sustainability by using native phosphate solubilizing rhizobacteria in the agriculture of arid zones. Front Sustain Food Syst 4:607355 10.3389/fsufs.2020.607355
[23]
Pieterse CMJ, de Jonge R, Berendsen RL (2016) The soil-borne supremacy. Trends Plant Sci 21:171–173 10.1016/j.tplants.2016.01.018
[24]
Shiping Sh, Zhongwei W, Wei Ch, Dongxia D, Dianfeng Z, Guohui M (2023) Biofertilizer based on halotolerant microorganisms promotes the growth of rice plants and alleviates the effects of saline stress. Front Microbiol. https://doi.org/10.3389/fmicb.2023.1165631 10.3389/fmicb.2023.1165631
[25]
Xie X, Liu Y, Chen G, Turatsinze AN, Yue L, Ye A, Zhou Q, Zhang YM, Zhang Y, Li Z, Phan Tran L, Wang R (2024) Granular bacterial inoculant alters the rhizosphere microbiome and soil aggregate fractionation to affect phosphorus fractions and maize growth. Sci Total Environ 912:169371. https://doi.org/10.1016/j.scitotenv.2023.169371 10.1016/j.scitotenv.2023.169371
[26]
Torbaghan ME, Lakzian A, Astaraei AR, Fotovat A, Besharati H (2017) Salt and alkali stresses reduction in wheat by plant growth promoting haloalkaliphilic bacteria. J Soil Sci Plant Nutr 17:1058–1073 10.4067/s0718-95162017000400016
[27]
Dixit VK, Misra S, Mishra SK, Tewari SK, Joshi N, Chauhan PS (2020) Characterization of plant growth-promoting alkalotolerant Alcaligenes and Bacillus strains for mitigating the alkaline stress in Zea mays. Antonie Van Leeuwenhoek 113:889–905 10.1007/s10482-020-01399-1
[28]
Cumpa-Velásquez LM, Moriconi JL, Dip DP, Castagno LN, Puig ML, Maiale SJ, Santa-María GE, Sannazzaro AI, Estrella MJ (2021) Prospecting phosphate solubilizing bacteria in alkaline-sodic environments reveals intra-specific variability in Pantoea eucalypti affecting nutrient acquisition and rhizobial nodulation in Lotus tenuis. Appl Soil Ecol 168:104125 10.1016/j.apsoil.2021.104125
[29]
Borsodi AK, Mucsi M, Krett G, Szabó A, Felföldi T, Szili-Kovács T (2021) Variation in sodic soil bacterial communities associated with different alkali vegetation types. Microorganisms 9:1673 10.3390/microorganisms9081673
[30]
Yang D, Tang L, Cui Y, Chen J, Liu L, Guo C (2022) Saline-alkali stress reduces soil bacterial community diversity and soil enzyme activities. Ecotoxicology 31:1356–1368 10.1007/s10646-022-02595-7
[31]
Walkley A, Black IA (1934) An examination of Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Sci 37:29–37 10.1097/00010694-193401000-00003
[32]
Bradstreet RB (1954) Kjeldahl method for organic nitrogen. Anal Chem 26(1):185–187. https://doi.org/10.1021/ac60085a028 10.1021/ac60085a028
[33]
Bray RH, Kurtz LT (1945) Determination of Total organic and available forms of phosphorus in soils. Soil Sci 59:39–45 10.1097/00010694-194501000-00006
[34]
Wehr and Frank, (ed) (2004) Standard methods for the examination of dairy products, 17th edn. American Public Health Association, Washington
[35]
Nautiyal CS (1999) An efficient microbiological growth medium for screening phosphate solubilizing microorganisms. FEMS Microbiol Lett 170:265–270 10.1111/j.1574-6968.1999.tb13383.x
[36]
Sperry J, Wilkins TD (1976) Arginine, a growth-limiting factor for Eubacterium lentum. J Bacteriol 127:780–784 10.1128/jb.127.2.780-784.1976
[37]
Versalovic J, Schneider M, De Bruijn FJ, Lupski JR (1994) Genomic fingerprinting of bacteria using repetitive sequence-based polymerase chain reaction. Methods Mole Cell Biol 5:25–40
[38]
Sneath PH, Sokal RR (1973) Numerical taxonomy. The principles and practice of numerical classification.
[39]
Maier T, Klepel S, Renner U, Kostrzewa M (2006) Fast and reliable maldi-tof ms–based microorganism identification. Nature Publishing Group, New York 10.1038/nmeth870
[40]
Lopez JL, Alvarez F, Principe A, Salas ME, Lozano MJ, Draghi WO, Jofre E, Lagares A (2018) Isolation, taxonomic analysis, and phenotypic characterization of bacterial endophytes present in alfalfa (Medicago sativa) seeds. J Biotechnol 267:55–62 10.1016/j.jbiotec.2017.12.020
[41]
Ferreira L, Sanchez-Juanes G-F, Rivas R, Mateos PF, Martinez-Molina E, Gonzalez-Buitrago JM, Velazquez E (2011) MALDI-TOF mass spectrometry is a fast and reliable platform for identification and ecological studies of species from family rhizobiaceae. PLoS ONE 6(5):e20223. https://doi.org/10.1371/journal.pone.0020223 10.1371/journal.pone.0020223
[42]
Oyuela Aguilar M, Alvarez F, Medeot DB, Jofré E, Semorile LC, Pistorio M (2021) Screening of epiphytic rhizosphere-associated bacteria in Argentinian Malbec and Cabernet-Sauvignon vineyards for potential use as biological fertilisers and pathogen-control agents. OENO One 55:145–157. https://doi.org/10.20870/oeno-one.2021.55.4.4655 10.20870/oeno-one.2021.55.4.4655
[43]
Toniutti MA, Fornasero LV, Albicoro FJ, Martini MC, Draghi W, Alvarez F, Lagares A, Pensiero JF, Del Papa MF (2017) Nitrogen-fixing rhizobial strains isolated from Desmodium incanum DC in Argentina: Phylogeny, biodiversity and symbiotic ability. Syst Appl Microbiol 40:297–307 10.1016/j.syapm.2017.04.004
[44]
Dobereiner J, Marriel IE, Nery M (1976) Ecological distribution of Spirillum lipoferum Beijerinck. Can J Microbiol 22:1464–1473 10.1139/m76-217
[45]
Baldani JI, Reis VM, Videira SS, Boddey LH, Baldani VLD (2014) The art of isolating nitrogen-fixing bacteria from non-leguminous plants using N-free semi-solid media: a practical guide for microbiologists. Plant Soil 384:413–431 10.1007/s11104-014-2186-6
[46]
Perez-Miranda S, Cabirol N, George-Tellez R, Zamudio-Rivera LS, Fernandez FJ (2007) O-CAS a fast and universal method for siderophore detection. J Microbiol Methods 70:127–131 10.1016/j.mimet.2007.03.023
[47]
Gordon SA, Weber RP (1951) Colorimetric estimation of indoleacetic acid. Plant Physiol 26:192–195 10.1104/pp.26.1.192
[48]
Hammer Ø, Harper DA, Ryan PD (2001) PAST: Paleontological statistics software package for education and data analysis. Palaeontologia Electronica 4:9
[49]
Shannon CE, Weaver W (1949) A mathematical model of communication. University of Illinois Press, Urbana, pp 11–20
[50]
Simpson EH (1949) Measurement of diversity. Nature 163:688–688 10.1038/163688a0

Showing 50 of 85 references

Metrics
3
Citations
85
References
Details
Published
May 25, 2024
Vol/Issue
81(7)
License
View
Funding
Agencia Nacional de Promoción Científica y Tecnológica Award: PICT 2013-0963
Cite This Article
Diana Patricia Dip, Analía Inés Sannazzaro, José Otondo, et al. (2024). Exploring Phosphate Solubilizing Bacterial Communities in Rhizospheres of Native and Exotic Forage Grasses in Alkaline-Sodic Soils of the Flooding Pampa. Current Microbiology, 81(7). https://doi.org/10.1007/s00284-024-03704-x
Related

You May Also Like