Field isolates of Monilinia fructicola Change resistance pattern to greater sensitivity to thiophanate-methyl in recent populations

Author:

Fischer Juliana Marta Muehlmann,Dutra Pamela Suellen Salvador,de Araujo Hannah Ebbinghaus,Glienke Chirlei,De Mio Louise Larissa MayORCID

Funder

CAPES

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

Springer Science and Business Media LLC

Subject

Horticulture,Plant Science,Agronomy and Crop Science

Reference69 articles.

1. Adaskaveg, J., Gubler, D., & Michailides, T. (2017). Fungicides, bactericides, and biologicals for deciduous tree fruit, nut, strawberry, and vine crops. UC Pest Management Guidelines. University of California Davis. Available on: http://ipm.ucanr.edu/PDF/PMG/fungicideefficacytiming.pdf. Accessed 13 October 2021.

2. AGROFIT. (2003). Sistema de agrotóxicos fitossanitários. Brasília: Ministério da Agricultura, Pecuária e Abastecimento. Retrieved October 16, 2021, from http://extranet.agricultura.gov.br/agrofit_cons/principal_agrofit_cons

3. Agrios, G. N. (2005). Plant pathology fifth edition. San Diego Calf. USA: Ed Elsevier Academia Press.

4. Albertini, C., Gredt, M., & Leroux, P. (1999). Mutations of the β-tubulin gene associated with different phenotypes of benzimidazole resistance in the cereal eyespot fungi Tapesia yallundae and Tapesia acuformis. Pesticide Biochemistry and Physiology, 64(1), 17–31. https://doi.org/10.1006/pest.1999.2406

5. Andrade, A. C., Del Sorbo, G., Van Nistelrooy, J. G., & De Waard, M. A. (2000). The ABC transporter AtrB from Aspergillus nidulans mediates resistance to all major classes of fungicides and some natural toxic compounds. Microbiology, 146(8), 1987–1997. https://doi.org/10.1099/00221287-146-8-1987

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