|
Reference
|
1
|
Alonso, L.M., Kleiner, D., Ortega, E. (2008) Spores of the mycorrhizal fungus Glomus mosseae host yeasts that solubilize phosphate and accumulate polyphosphates. Mycorrhiza, 18(4): 197-204
|
15
|
Anderson, G.R. (1958) Ecology of Azotobacter in soil of the palouse region, I: Occurrence. Soil Science, 86, str. 57-65
|
5
|
Bajić, B., Rončević, Z., Puškaš, V., Miljić, U., Dodić, S., Grahovac, J., Dodić, J. (2015) White wine production effluents used for biotechnological production of xanthan. Journal on Processing and Energy in Agriculture, vol. 19, br. 1, str. 52-55
|
|
Behera, B.C., Singdevsachan, S.K., Mishra, R.R., Dutta, S.K., Thatoi, H.N. (2014) Diversity, mechanism and biotechnology of phosphate solubilising microorganism in mangrove-A review. Biocatalysis and Agricultural Biotechnology, 3(2): 97-110
|
|
Berg, G. (2009) Plant-microbe interactions promoting plant growth and health: Perspectives for controlled use of microorganisms in agriculture. Applied Microbiology and Biotechnology, 84(1): 11-18
|
|
Berraquero, F.R., Baya, A.M., Cormenzana, A.R. (1976) Establishment of indices for the study of phosphate solubilization by soil bacteria. Ars Pharmacéutica, 399-406; 17
|
|
Braud, A., Jézéquel, K., Bazot, S., Lebeau, T. (2009) Enhanced phytoextraction of an agricultural Cr- and Pb-contaminated soil by bioaugmentation with siderophore-producing bacteria. Chemosphere, 74(2): 280-6
|
|
Breierová, E., Čertík, M., Kovárová, A., Gregor, T. (2008) Biosorption of Nickel by Yeasts in an Osmotically Unsuitable Environment. Zeitschrift für Naturforschung C, 63(11-12): 873-878
|
|
Campos, V., Moraga, R., Fernández, Í., Yáñez, F., Valenzuela, A., Mondaca, M. (2013) Reduction of hexavalent cromium by Serratia marcecens immobilized on active carbon and their potencial use in bioremediation. Gayana (Concepción), 77(1): 61-63
|
|
Cappuccino, J.C., Sherman, N. (1992) Microbiology: A laboratory manual. New York: Benjamin/Cummings Pub Co
|
1
|
Compant, S., Duffy, B., Nowak, J., Clément, C., Barka, E.A. (2005) Use of plant growth-promoting bacteria for biocontrol of plant diseases: Principles, mechanisms of action, and future prospects. Applied and environmental microbiology, 71(9): 4951-9
|
1
|
Glick, B.R. (2012) Plant Growth-Promoting Bacteria: Mechanisms and Applications. Scientifica, 2012: 1-15
|
2
|
Hayat, R., Ali, S., Amara, U., Khalid, R., Ahmed, I. (2010) Soil beneficial bacteria and their role in plant growth promotion: A review. Annals of Microbiology, 60(4): 579-598
|
|
Huang, X., El-Alawi, Y., Gurska, J., Glick, B.R., Greenberg, B.M. (2005) A multi-process phytoremediation system for decontamination of persistent total petroleum hydrocarbons (TPHs) from soils. Microchemical Journal, 81(1): 139-147
|
|
Jovičić, P.J., Karličić, V., Radić, D., Jovanović, Lj., Kiković, D., Raičević, V. (2014) Microbial biodiversity in PAH and PCB contaminated soil as a potential for in situ bioremediation. u: Proceedings of The 9th Conference on Sustainable Development of Energy, Water and Environment Systems, Venice - Istanbul, pp. 1-10
|
|
Karličić, V., Jovičić, P.J., Radić, D., Lalević, B., Raičević, V., Jovanović, Lj. (2014) In situ bioremediation of soil polluted with organotin substrances. u: Vrvić M., Cokić Z., Tanasijević L.J. [ur.] Soil 2014 Planning and land use and landfills in terms of sustainable development and new remediation technologies, Proceedings, Zrenjanin, pp. 43-50
|
|
Kavamura, V.N., Esposito, E. (2010) Biotechnological strategies applied to the decontamination of soils polluted with heavy metals. Biotechnology advances, 28(1): 61-9
|
|
Koo, S.Y., Cho, K.S. (2009) Isolation and characterization of a plant growth promoting rhizobacterium Serratia sp. SY5. Journal of Microbiology and Biotechnology, 1431-1438; 19
|
2
|
Lucy, M., Reed, E., Glick, B.R. (2004) Applications of free living plant growth-promoting rhizobacteria. Antonie van Leeuwenhoek, 86(1): 1-25
|
|
Ma, Y., Prasad, M.N.V., Rajkumar, M., Freitas, H. (2011) Plant growth promoting rhizobacteria and endophytes accelerate phytoremediation of metalliferous soils. Biotechnology Advances, 29(2): 248-258
|
|
Patten, C. L., Glick, B. R. (2002) Role of Pseudomonas putida Indoleacetic Acid in Development of the Host Plant Root System. Applied and Environmental Microbiology, 68(8): 3795-3801
|
|
Rodríguez, H., Fraga, R., Gonzalez, T., Bashan, Y. (2006) Genetics of phosphate solubilization and its potential applications for improving plant growth-promoting bacteria. Plant and Soil, 287(1-2): 15-21
|
|
Sarma, B., Acharya, C., Joshi, S. R. (2013) Characterization of Metal Tolerant Serratia spp. Isolates from Sediments of Uranium Ore Deposit of Domiasiat in Northeast India. Proceedings of the National Academy of Sciences, India Section B: Biological Sciences, 86(2): 253-260
|
|
Schwyn, B., Neilands, J.B. (1987) Universal chemical assay for the detection and determination of siderophores. Analytical biochemistry, 160(1): 47-56
|
7
|
Smith, S.E., Read, D.J. (2008) Mycorrhizal symbiosis. New York-San Diego, itd: Academic Press
|
1
|
Teixeira, D.A., Alfenas, A.C., Mafia, R.G., Ferreira, E.M., de Siqueira, L., Maffia, L.A., Mounteer, A.H. (2007) Rhizobacterial promotion of eucalypt rooting and growth. Brazilian Journal of Microbiology, 38(1): 118-123
|
|
Tilak, K.V.B.R., Ranganayaki, N., de Pal, K.K.R., Saxena, A.K., Nautiyal, S.C., Mittal, S., Tripathi, A.K., Johri, B.N. (2005) Diversity of plant growth and soil health supporting bacteria. Current science, 89
|
|
Trama, B., Fernandes, J.D.S., Labuto, G., de Oliveira, J.C.F., Viana-Niero, C., Pascon, R.C., Vallim, M.A. (2014) The Evaluation of Bioremediation Potential of a Yeast Collection Isolated from Composting. Advances in Microbiology, 04(12): 796-807
|
2
|
Welbaum, G.E., Sturz, A.V., Dong, Z., Nowak, J. (2004) Managing Soil Microorganisms to Improve Productivity of Agro-Ecosystems. Critical Reviews in Plant Sciences, 23(2): 175-193
|
|
|
|