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Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction

To develop proposals in bacterial formulations applicable to the agricultural sector, a study of physicochemical and biological parameters of the polymeric materials is essential. Here, we evaluated the effects of eight polymers on the cellular viability of Rhizobium sp. G58 during a 2-month period....

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Main Authors: Rivera, Diego, Obando, Melissa, Barbosa, Helber, Rojas Tapias, Daniel, Bonilla Buitrago, Ruth
Format: article
Language:Inglés
Published: Pontificia Universidad Javeriana 2025
Subjects:
Online Access:https://revistas.javeriana.edu.co/index.php/scientarium/article/view/7396
http://hdl.handle.net/20.500.12324/40736
id RepoAGROSAVIA40736
record_format dspace
institution Corporación Colombiana de Investigación Agropecuaria
collection Repositorio AGROSAVIA
language Inglés
topic Investigación agropecuaria - A50
Rhizobium
Polimero
Análisis multivariante
Formulación
Transversal
http://aims.fao.org/aos/agrovoc/c_6563
http://aims.fao.org/aos/agrovoc/c_32041
http://aims.fao.org/aos/agrovoc/c_28921
http://aims.fao.org/aos/agrovoc/c_3068
spellingShingle Investigación agropecuaria - A50
Rhizobium
Polimero
Análisis multivariante
Formulación
Transversal
http://aims.fao.org/aos/agrovoc/c_6563
http://aims.fao.org/aos/agrovoc/c_32041
http://aims.fao.org/aos/agrovoc/c_28921
http://aims.fao.org/aos/agrovoc/c_3068
Rivera, Diego
Obando, Melissa
Barbosa, Helber
Rojas Tapias, Daniel
Bonilla Buitrago, Ruth
Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
description To develop proposals in bacterial formulations applicable to the agricultural sector, a study of physicochemical and biological parameters of the polymeric materials is essential. Here, we evaluated the effects of eight polymers on the cellular viability of Rhizobium sp. G58 during a 2-month period. From these results, we selected the three polymers that yielded the best results in respect to the survival of the bacteria. An assay of the effect of the polymers on the symbiotic activity of Rhizobium-Cowpea and the agronomic parameters was conducted under greenhouse conditions, based on the principal component analysis. A positive effect was found in Rhizobium sp. G58 using the Tukey’s Test (p<0.05) with sodium alginate (0.5-1%) and hydroxypropyl methylcellulose-HPMC (0.125-0.5%), while a significant decrease was established in cellular viability using polyethylene glycol-PEG, carbomer-Carbopol 940, and polyvinyl alcohol-PVA. The multivariate analysis indicated that the application of the polymers (sodium alginate and hydroxypropyl methylcellulose) in 0.5% concentration did not have negative effects on the symbiotic fixation of nitrogen or the process of nodulation. In conclusion, our results suggest the effectiveness of these polymers and the possibility of using them as carriers of bacterial formulation without affecting physiological processes.
format article
author Rivera, Diego
Obando, Melissa
Barbosa, Helber
Rojas Tapias, Daniel
Bonilla Buitrago, Ruth
author_facet Rivera, Diego
Obando, Melissa
Barbosa, Helber
Rojas Tapias, Daniel
Bonilla Buitrago, Ruth
author_sort Rivera, Diego
title Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
title_short Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
title_full Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
title_fullStr Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
title_full_unstemmed Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction
title_sort evaluation of polymers for the liquid rhizobial formulation and their influence in the rhizobium-cowpea interaction
publisher Pontificia Universidad Javeriana
publishDate 2025
url https://revistas.javeriana.edu.co/index.php/scientarium/article/view/7396
http://hdl.handle.net/20.500.12324/40736
work_keys_str_mv AT riveradiego evaluationofpolymersfortheliquidrhizobialformulationandtheirinfluenceintherhizobiumcowpeainteraction
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spelling RepoAGROSAVIA407362025-03-04T03:01:06Z Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction Evaluation of polymers for the liquid rhizobial formulation and their influence in the Rhizobium-Cowpea interaction Rivera, Diego Obando, Melissa Barbosa, Helber Rojas Tapias, Daniel Bonilla Buitrago, Ruth Investigación agropecuaria - A50 Rhizobium Polimero Análisis multivariante Formulación Transversal http://aims.fao.org/aos/agrovoc/c_6563 http://aims.fao.org/aos/agrovoc/c_32041 http://aims.fao.org/aos/agrovoc/c_28921 http://aims.fao.org/aos/agrovoc/c_3068 To develop proposals in bacterial formulations applicable to the agricultural sector, a study of physicochemical and biological parameters of the polymeric materials is essential. Here, we evaluated the effects of eight polymers on the cellular viability of Rhizobium sp. G58 during a 2-month period. From these results, we selected the three polymers that yielded the best results in respect to the survival of the bacteria. An assay of the effect of the polymers on the symbiotic activity of Rhizobium-Cowpea and the agronomic parameters was conducted under greenhouse conditions, based on the principal component analysis. A positive effect was found in Rhizobium sp. G58 using the Tukey’s Test (p<0.05) with sodium alginate (0.5-1%) and hydroxypropyl methylcellulose-HPMC (0.125-0.5%), while a significant decrease was established in cellular viability using polyethylene glycol-PEG, carbomer-Carbopol 940, and polyvinyl alcohol-PVA. The multivariate analysis indicated that the application of the polymers (sodium alginate and hydroxypropyl methylcellulose) in 0.5% concentration did not have negative effects on the symbiotic fixation of nitrogen or the process of nodulation. In conclusion, our results suggest the effectiveness of these polymers and the possibility of using them as carriers of bacterial formulation without affecting physiological processes. 2025-03-03T13:27:06Z 2025-03-03T13:27:06Z 2014-07 2014 article Artículo científico http://purl.org/coar/resource_type/c_2df8fbb1 info:eu-repo/semantics/article https://purl.org/redcol/resource_type/ART http://purl.org/coar/version/c_970fb48d4fbd8a85 https://revistas.javeriana.edu.co/index.php/scientarium/article/view/7396 http://hdl.handle.net/20.500.12324/40736 reponame:Biblioteca Digital Agropecuaria de Colombia instname:Corporación colombiana de investigación agropecuaria AGROSAVIA eng Universitas Scientiarum 19 3 265 275 Akhgaria A, Farahmanda F, Afrasiabi H, Garekania F, Sadeghia T, Vandammeb T (2006) “Permeability and swelling studies on free films containing inulin in combination with different polymethacrylates aimed for colonic drug delivery” European Journal of Pharmaceutical Sciences 2: 307–314 Albareda M, Rodríguez-Navarro DN, Camacho M, Temprano FJ (2008) Alternatives to peat as a carrier for rhizobia inoculants: solid and liquid formulations. Soil Biology and Biochemistry 40: 2771-2779 Angelini J, Ibáñez F, Taurian T, Tonelli ML, Valetti L, Fabra A (2011) A Study on the Prevalence of Bacteria that Occupy Nodules within Single Peanut Plants. Curr Microbiol 62:1752–1759 Ansel HC, Allen LV, Popovich NG (2004) Ansel´s Pharmaceutical Dosage Forms and Drug Delivery Systems. 8ª Edición. Lea & Febiger, Philadelphia Araméndiz-Tatis H, Espitia-Camacho M, Sierra CM (2011) Comportamiento agronómico de líneas promisorias de fríjol caupí Vigna unguiculata L. Walp en el Valle del Sinú. Temas agrarios 16:(2): 9–17 ASTM (1995) Standard test methods for water vapor transmission of materials. ASTM E96-95. In ASTM book of standards, pp. 697-704. Philadelphia: ASTM Aungsupravate O, Lucas D, Abu Hassan N, Tonge M, Warrender G, Castignolles P, Gaborieau M, Gilbert R (2008) “Water vapour transmission in butadiene– MMA–methacrylic acid latex films” European Polymer Journal 44: 342–356 Bajdik J, Regdon G, Marek T, Eros I, Suvegh K (2005) “The effect of the solvent on the film forming parameters of hydroxypropyl–cellulose”, Internacional Journal of Pharmaceutics 301–192 Bashan Y, Gonzales LE (1999) Long-term survival of the plant-growth-promoting bacteria Azospirillum brasilense and Pseudomonas fluorescens in dry alginate inoculant. Applied Microbiology and Biotechnology 51: 262–266 Bashan Y, Hernandez JP, Levya LA, Bacilio M (2002) Alginate microbeads as inoculant carriers for plant growth-promoting bacteria. Biol Fertil Soils 35: 359–368 Cruz de Carvalho MH, Laffray D, Louguet P (1998) Comparison of the physiological responses of Phaseolus vulgaris and Vigna unguiculata cultivars when submitted to drought conditions. Environmental and Experimental Botany 40: 197–207 Cardona-Ayala C, Jarma-Orozco A, Araméndiz-Tatis H (2013) Mecanismos de adaptación a sequía en caupí (Vigna unguiculata (L.) Walp.). Una revisión. Revista Colombiana de Ciencias Hortícolas 7(2): 277–288 Deaker R, Roughley RJ, Kennedy IR (2007) Desiccation tolerance of rhizobia when protected by synthetic polymers. Soil Biology and Biochemistry 39: 573–580 Denardin ND, Freire JRJ (2000) Assessment of polymers for the formulation of legume inoculants. World Journal of Microbiology and Biotechnology 16: 215–217 Dommergues YR, Diem HG, Divies C (1979) Polyacrylamide-entrapped Rhizobium as an inoculant for legumes. Applied and Environmental Microbiology 37: 779–781 Fernandes Júnior PI, Da Silva Júnior EB, Da Silva Júnior S, Da Silva e Santos CE, Oliveira PJ, Rumjanek NG, Vieira Martins LM, Xavier GR (2012) Performance of polymer compositions as carrier to Cowpea rhizobial inoculant formulations: Survival of rhizobia in preinoculated seeds and field efficiency. African Journal of Biotechnology 11(12): 2945–2951 Fulzele S, Satturwar P, Dorle A (2002) “Polymerized rosin: novel film forming polymer for drug delivery” International Journal of Pharmaceutics 249: 175–184 Glickmann E, Dessaux Y (1995) A critical examination of the specificity of the salkowski reagent for indolic compounds produced by phytopathogenic bacteria. Applied and Environmental Microbiology 61: 793–796 Haffez FY, Asad S, Malik KA (1991) The effect of high temperature on Vigna radiata nodulation and growth with different bradyrhizobial strains. Environ Exp Bot 31: 285–294 Hardy RWF, Holsten RD, Jackson EK, Burns RC (1968) Acetylene ethylene assay for N2 fixation: laboratory and field evaluation. Plant Physiology 43: 1185–1207 Herrmann L, Lesueur D (2013) Challenges of formulation and quality of biofertilizers for successful inoculation. Appl Microbiol Biotechnol 97: 8859–8873 Hirsch AM, Lum MR, Downie JA (2001) What Makes the Rhizobia-Legume Symbiosis So Special?. Plant Physiology 127: 1484–1492 Hoagland DR, Arnon DI (1950) A water culture method for growing plants without soil. California Agricultural Experimental Station Circular 347 Jung G, Mugnier J, Diem HG, Dommergues YR (1982) Polymer-entrapped Rhizobium as an inoculant for legumes. Plant and Soil 65: 219–231 Kibbe A (2000) Handbook of pharmaceuticals excipients. Third edition. Washington DC. London, United Kingdom: American Pharmaceutical Association (APha) Kiil S, Dam-Johansen K (2003) Controlled drug delivery from swellable hydroxypropylmethylcellulose matrices: model-based analysis of observed radial front movements. Journal of Controlled Release 90: 1–21 Kwon KH, Jung KY, Yeom SH (2009) Comparison between entrapment methods for phenol removal and operation of bioreactor packed with co-entrapped activated carbon and Pseudomonas fluorescence KNU417. Bioprocess Biosyst Eng 32: 249–256 Li JK, Wang N and Wu X (1998) “Poly(vinyl alcohol) nanoparticles prepared by freezing-thawing process for protein/peptide drug delivery”. Journal of Controlled Release 56: 117–126 Lieberman H, Lachman L (1982) Pharmaceutical Dosage Forms–Tablets, Marcel Dekker, New York , Vol 3, pp. 138–148 Lupwayi NZ, Clayton GW, Rice WA (2006) Rhizobial inoculants for legume crops. Journal of Crop Improvement 15: 289–321 Meghvansi MK, Prasad K, Mahna SK (2010) Symbiotic potential, competitiveness and compatibility of indigenous Bradyrhizobium japonicum isolates to three soybean genotypes of two distinct agro-climatic regions of Rajasthan, India. Saudi Journal of Biological Sciences 17: 303–310 Panter S, Thomson R, de Bruxelles G, Laver D, Trevaskis B, Udvardi M (2000) Identification with proteomics of novel proteins associated with the peribacteroid membrane of soybean root nodules. Mol Plant Microbe Interact 13: 325–333 Perioli L, Ambrogi V, Angelini F, Ricci M, Giovagnoli S, Capucella M, Rossi C (2004) Development of mucoadhesive patches for buccal administration of ibuprofen. Journal of Controlled Release 99 Pikovskaya R (1948) Mobilization of phosphorus in soil in connection with the vital activity in some microbial species. Mikrobiologiya. 17: 362–370 Rawsthorne S, Summerfield RJ (1984) An assessment of different techniques for inoculating Phaseolus vulgaris with Rhizobium Expl Agric 20: 119–127 Somasegaran P, Hoben HJ (1994) Handbook for rhizobia. Springer Verlag. New York. p. 50 Sprent JI (2001) Nodulation in legumes. Royal Botanic Gardens, Kew, UK Suvorova AI, Tjukova IS, Trufanova EI (1999) Thermodynamic and diffusion properties of biodegradable systems based on starch and cellulose derivatives. Journal of Polymers and the Environment 7: 35–40 Temprano FJ, Albareda M, Camacho M, Daza A, Santamaría C, Rodríguez-navarro DN (2002) Survival of several Rhizobium/Bradyrhizobium strains on different inoculant formulations and inoculated seeds. International Microbiology 5: 81–86 Tittabutr P, Payakaponga W, Teaumroonga N, Singletonb W, Boonkerda N (2007) Growth, Survival and Field Performance of Bradyrhizobial Liquid Inoculant Formulations with Polymeric Additives. Science Asia 33: 69–77 Trivedi P, Pandey A (2008) Plant growth promotion abilities and formulation of Bacillus megaterium strain B 388 (MTCC6521) isolated from a temperate Himalayan location. Indian Journal of Microbiology 48: 342–347 Vance CP (1998) Legume symbiotic nitrogen fixation: agronomic aspects. In: Spaink HP, Kondorosi A, Hooykaas PJJ, eds. The Rhizobiaceae. Dordrecht: Kluwer Academic Publishers. 509–530 Villalobos R, Hernández P, Muñoz A (2006) “Effect of surfactants on water sorption and barrier properties of hydroxypropyl methylcellulose films”, Food Hydrocolloids 20: 502–509 Yabur R, Bashan Y, Hernández-Carmona G (2007) Alginate from the macroalgae Sargassum sinicola as a novel source for microbial immobilization material in wastewater treatment and plant growth promotion. J. Appl. Phycol 19: 43–53 Young CC, Rekha PD, Lai WA, Arun AB (2006) Encapsulation of Plant Growth-Promoting Bacteria in Alginate Beads Enriched With Humic Acid. Biotechnology and Bioengineering 95, No. 1. doi: 10.1002/bit.20957 Zahran HH, Sprent JI (1986) Effects of sodium chloride and polyethyleneglycol on root-hair infection and nodulation of Vicia faba L. plants by Rhizobium leguminosarum. Planta 167: 303–309 Zimmermann H, Wählisch F, Baier C, Westhoff M, Reuss R, Zimmermann D, Behringer M, Ehrhart F, Katsen- Globa A, Giese C, Marx U, Sukhorukov VL, Vásquez JA, Jakob P, Shirley SG, Zimmermann U (2007) Physical and biological properties of barium crosslinked alginate membranes. Biomaterials 28 (7):1327–45 Attribution-NonCommercial-ShareAlike 4.0 International http://creativecommons.org/licenses/by-nc-sa/4.0/ application/pdf application/pdf Pontificia Universidad Javeriana Univ. Sci.; Vol. 19, Núm. 3 (2014): Univ. Sci. (Jul.);p. 265-275.