Biotic changes in relation to local decrease in soil conduciveness to disease caused by Rhizoctonia solani

Author:

Anees Muhammad,Tronsmo Arne,Edel-Hermann Véronique,Gautheron Nadine,Faloya Vincent,Steinberg Christian

Publisher

Springer Science and Business Media LLC

Subject

Horticulture,Plant Science,Agronomy and Crop Science

Reference35 articles.

1. Alabouvette, C., Raaijmakers, J., De Boer, W., Notz, R., Défago, G., Steinberg, C., et al. (2006). Concepts and methods to assess the phytosanitary quality of soils. In J. Bloem, D. W. Hopkins & A. Benedetti (Eds.), Plant-microbe interactions and soil quality handbook (pp. 257–270). Wallingford: CABI.

2. Bailey, D. J., Kleczkowski, A., & Gilligan, C. A. (2004). Epidemiological dynamics and the efficiency of biological control of soil-borne disease during consecutive epidemics in a controlled environment. New Phytologist, 161, 569–575.

3. Baker, K. F., & Cook, R. J. (1974). Biological control of plant pathogens. San Fransisco: Feeman.

4. Bakker, Y., & Schneider, J. H. M. (2004). Soils suppressive to Rhizoctonia solani AG 2-2IIIB in sugar beet. In R. A. Sikora, S. Gowen, R. Hauschild & S. Kiewnick (Eds.), Multitrophic interactions in soil and integrated control (pp. 17–21). Bonn: IOBC.

5. Bouhot, D. (1979). Estimation of inoculum density and inoculum potential: Techniques and their values for disease prediction. In B. Schippers & W. Gams (Eds.), Soil-borne plant pathogens (pp. 21–34). London: Academic.

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