Transcriptomic and functional analyses on a Botrytis cinerea multidrug‐resistant (MDR) strain provides new insights into the potential molecular mechanisms of MDR and fitness

Author:

Sofianos Georgios1ORCID,Piombo Edoardo2ORCID,Dubey Mukesh2ORCID,Karlsson Magnus2ORCID,Karaoglanidis George1ORCID,Tzelepis Georgios2ORCID

Affiliation:

1. Faculty of Agriculture, Forestry and Natural Environment, Laboratory of Plant Pathology Aristotelian University of Thessaloniki Thessaloniki Greece

2. Department of Forest Mycology and Plant Pathology Swedish University of Agricultural Sciences, Uppsala Biocenter Uppsala Sweden

Abstract

AbstractBotrytis cinerea is a notorious pathogen causing pre‐ and post‐harvest spoilage in many economically important crops. Excessive application of site‐specific fungicides to control the pathogen has led to the selection of strains possessing target site alterations associated with resistance to these fungicides and/or strains overexpressing efflux transporters associated with multidrug resistance (MDR). MDR in B. cinerea has been correlated with the overexpression of atrB and mfsM2, encoding an ATP‐binding cassette (ABC) and a major facilitator superfamily (MFS) transporter, respectively. However, it remains unknown whether other transporters may also contribute to the MDR phenotype. In the current study, the transcriptome of a B. cinerea multidrug‐resistant (MDR) field strain was analysed upon exposure to the fungicide fludioxonil, and compared to the B05.10 reference strain. The transcriptome of this field strain displayed significant differences as compared to B05.10, including genes involved in sugar membrane transport, toxin production and virulence. Among the induced genes in the field strain, even before exposure to fludioxonil, were several putatively encoding ABC and MFS transmembrane transporters. Overexpression of a highly induced MFS transporter gene in the B05.10 strain led to an increased tolerance to the fungicides fluopyram and boscalid, indicating an involvement in efflux transport of these compounds. Overall, the data from this study give insights towards better understanding the molecular mechanisms involved in MDR and fitness cost, contributing to the development of more efficient control strategies against this pathogen.

Funder

Hellenic Foundation for Research and Innovation

Publisher

Wiley

Reference81 articles.

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