Leptosphaeria maculans is a filamentous ascomycete causing stem canker of oilseed rape (Brassica napus). This disease is often controlled by the use of B. napus cultivars harbouring major resistance genes (Rlm). Direct or indirect recognition of the corresponding avirulence protein (AvrLm) in the pathogen triggers plant defence reactions. Several resistances have been massively deployed in France and worldwide, they initially showed commercial success due to the protection provided and in a second time, a very fast decrease of efficiency (resistance breakdown).Prior to this thesis, field studies of resistance gene breakdown mechanisms were rare, especially for fungi. The purpose of this PhD thesis was to study the molecular evolution of the avirulence gene AvrLm4-7 under selection pressure, by exploiting our knowledge of the gene, and the recent release of Rlm7 cultivars, to obtain an early and detailed study of the molecular mechanisms involved in a resistance gene breakdown. AvrLm4-7 induces resistance responses in plant harbouring either Rlm4 or Rlm7 and I validated by targeted point mutagenesis the central role of the amino acid 120 in the avrLm4-7-Rlm4 interaction. Its mutation prevents AvrLm4-7 recognition by Rlm4 without affecting avrLm4-7-Rlm7 recognition.Loss of avirulence towards Rlm7 was then studied by the analysis of an important isolate collection originating from two independent French experimental fields (Grignon; Versailles) over three years. In the first field was cropped Rlm7 cultivars in monoculture with low tillage agronomical practices whereas crop rotation and ploughing were done in the second field. In contrast to AvrLm4-Rlm4 evolution, a great number of mutations were found to explain the “gain” of virulence towards Rlm7. Seven mutational event categories were found. The great majority of these categories involve AvrLm4-7 deletion but mutation due to RIP and several other mutational events causing premature apparition of stop codons in the coding sequence of the gene were observed too. The majority of these events are linked to the sexual reproduction of the fungus and occurs in the experimental field.In addition, our work showed the importance of the cultural practices in preserving Rlm7 efficacy. Indeed, after three years using Rlm7 cultivars, a7 frequency was below 1% whereas representing around 30% of the isolates observed in Grignon.Finally, phenotyping of the isolate collection also showed the resurgence of an A3 phenotype linked with the loss of AvrLm7 avirulence in more than 98% of the isolates. Genetic analysis and collection phenotyping showed that AvrLm3 is not a new AvrLm4-7 allele but a distinct gene located in a telomeric region at 19.3 cM of AvrLm4-7. I also demonstrated that an antagonistic interaction between AvrLm4-7 and AvrLm3 exists: the presence of Avrlm4-7 prevents Rlm3 to detect AvrLm3 and explains the surge of the AvrLm3 avirulence along with the loss of the AvrLm7 avirulence.By an original association of molecular biology, population genetic and agronomy, this work provided a new illustration of the plant-pathogen arms race, AvrLm3 and AvrLm4-7 using two different strategies to escape their respective resistance genes.