Aggregation of soil particles by Nostoc muscorum Ag. (Cyanobacteria)

The effect produced by the addition to the soil of a continuously renewable organic matter source (Nostoc muscorum Ag.) on the stability of soil aggregation and other physico-chemical and biological properties responsible for soil aggregation were determined. The inoculated soil shows an increase of...

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Autor principal: De Cano, M.S
Otros Autores: De Mulé, M.C.Z, De Caire, G.Z, Palma, R.M, Colombo, K.
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: 1997
Acceso en línea:Registro en Scopus
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100 1 |a De Cano, M.S. 
245 1 0 |a Aggregation of soil particles by Nostoc muscorum Ag. (Cyanobacteria) 
260 |c 1997 
270 1 0 |m De Cano, M.S.; Fac. de Cs. Exactas y Naturales UBA, Lab. Fisiología Vegetal, Nuñez. CP, 1428 Bs. As., Argentina 
506 |2 openaire  |e Política editorial 
504 |a Bailey, D., Mazurak, A.P., Rosowski, J.R., (1973) J Phycol, 9, p. 99 
504 |a Barclay, W.R., Lewin, R.A., (1985) Plant & Soil, 88, p. 159 
504 |a Martens, D.A., Frankerberger Jr., W.T., (1991) Soil Biol Biochem, 23, p. 731 
504 |a Kinsbursky, R.S., Levanon, D., Yaron, B., (1989) Soil Soc Am J, 53, p. 1086 
504 |a Schulten, J.A., (1985) Amer J Bot, 72, p. 1657 
504 |a Dodds, W.K., Gudder, D.A., Mollenbauer, D., (1995) J Phycol, 31, p. 217 
504 |a Richardson, D.H.S., (1981) The Biology of Mosses, , John Wiley & Son, New York 
504 |a De Halperin, D.R., (1969) Physis, 29, p. 37 
504 |a De Halperin, D.R., De Mulé, M.C.Z., De Caire, G.Z., (1976) Darwiniana, 20, p. 341 
504 |a De Cano, M.M.S., (1982) Obtención in Vitro de Biodermas Algales y su Incidencia Sobre el Suelo, , Tesis doctoral No 1724, Fac Cs Ex y Nat UBA 
504 |a Panoff, J.M., Priem, B., Morvan, H., Joset, F., (1988) Arch Microbio, 150, p. 558 
504 |a Hershkovitz, N., Oren, A., Cohen, Y., (1991) Appl Environ Microbiol, 57, p. 645 
504 |a Sudo, H., Burgess, J.G., Tamemasa, H., Nakamura, N., Matsunaga, H., (1995) Current Microbiol, 30, p. 219 
504 |a Allen, M.M., Stanier, R.Y., (1968) J Gen Microbiol, 51, p. 199 
504 |a Page, A.L., Miller, R.H., Keeney, D.R., (1982) Methods of Soil Analysis. Part 2, 2da Ed, , Wisconsin, USA 
504 |a Davidson, E.A., Galloway, L.F., Strand, M.K., (1987) Comm Soil Sci Plant Anal, 18, p. 45 
504 |a Alef, K., Kleiner, D., (1987) Biol Fert Soils, 5, p. 148 
504 |a Grieve, I.C., (1979) Br Geomorph Res Gr, 25, p. 1 
504 |a Habib, L., Morel, J.L., Guckert, A., Plantureux, S.D., Chenu, C., (1990) Symbiosis, 9, p. 87 
504 |a Bosatta, E., Agren, G.I., (1991) Am Nat, 138, p. 227 
504 |a Schimel, J.P., (1986) Biogeochemistry, 2, p. 345 
504 |a Nakagawa, M., Takamura, Y., Yagi, O., (1987) Agric Biol Chem, 51, p. 329 
504 |a Chenu, C., Guerif, J., (1991) Soil Sci Am J, 55, p. 1076 
520 3 |a The effect produced by the addition to the soil of a continuously renewable organic matter source (Nostoc muscorum Ag.) on the stability of soil aggregation and other physico-chemical and biological properties responsible for soil aggregation were determined. The inoculated soil shows an increase of 56 % of aggregates bigger than 250 μ and a decrease of 18.3 % of aggregates smaller than 2 μ. This stability is a consequence of the increase in the microbiological activity and also of the concentration of polysaccharides (mainly produced by the cyanobacteria) in the soil.  |l eng 
593 |a Fac. de Cs. Exactas y Naturales UBA, Lab. Fisiología Vegetal, Nuñez. CP, 1428 Bs. As., Argentina 
593 |a Fac. Agronomía UBA, Cát. Edafología, Av. San Martín 4453 CP, 1417 Bs. As., Argentina 
593 |a Plan AG013 Aprobado por el Prog. I., Bs. As, Argentina 
700 1 |a De Mulé, M.C.Z. 
700 1 |a De Caire, G.Z. 
700 1 |a Palma, R.M. 
700 1 |a Colombo, K. 
773 0 |d 1997  |g v. 60  |h pp. 33-38  |p Phyton  |x 00319457  |t Phyton 
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856 4 0 |u https://hdl.handle.net/20.500.12110/paper_00319457_v60_n_p33_DeCano  |y Handle 
856 4 0 |u https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319457_v60_n_p33_DeCano  |y Registro en la Biblioteca Digital 
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