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Grenville-Briggs, L.

Publications and source records attributed to Grenville-Briggs, L..

2 recordsLinked to original sources

Evaluating the Biocontrol Potential of Pythium oligandrum and Serratia proteamaculans in Controlling Phytophthora plurivora in European beech (Fagus sylvatica)

In recent years, the plant pathogen Phytophthora plurivora has caused severe damage to beech forests in many European countries, including Sweden. In many affected areas, few protective measures are in place due to fears about potential negative impacts on the ecosystem or public health. The research presented in this article assesses the biocontrol potential of the oomycete Pythium oligandrum and the bacterium Serratia proteamaculans against P. plurivora, with experiments performed under both in vitro and greenhouse conditions, which could represent a step forward in developing a safe treatment for European beech forests. The in vitro results revealed that P. oligandrum and S. proteamaculans significantly inhibited pathogen growth and stimulated a shift in the hyphal growth pattern towards shorter, branched hyphae with many hyphal swellings and thickened cell walls. The experiments conducted in greenhouses showed that treating three-month-old beech seedlings with P. oligandrum and S. proteamaculans counteracts the P. plurivora pathogen and reduces disease symptoms on the aerial and underground parts of the plant. GC-MS analysis detected the volatile organic compounds alpha-pinene, 2,5-dimethyl-pyrazine, and 3-methyl-1-butanol from S. proteamaculans; these compounds have the potential to inhibit pathogen growth. The disease suppression demonstrated by these biocontrol agents could thus be related to the synergistic effect of competition for nutrients with the secretion of hydrolytic enzymes and VOCs; moreover, induced systemic resistance may be triggered under greenhouse conditions. In conclusion, using P. oligandrum and S. proteamaculans could represent an environmentally friendly strategy for effectively controlling the disease caused by P. plurivora in beech.

pathology↗

Plant genotype-specific modulation of Clonostachys rosea-mediated biocontrol of septoria tritici blotch disease on wheat

BackgroundBeneficial microorganisms can act as biological control agents (BCAs) by directly targeting pathogens or indirectly by enhancing the plants defense mechanisms against pathogens. However, efficiencies with which plants benefit from BCAs vary, potentially because of genetic variation in plants for plant-BCA compatibility. The aim of this study was to explore the genetic variation in winter wheat for modulation of Clonostachys rosea-mediated biocontrol of septoria tritici blotch disease caused by the fungal pathogen Zymoseptoria tritici. ResultsIn total, 202 winter wheat genotypes, including landraces and old cultivars grown from 1900 onwards in the Scandinavian countries, were tested under greenhouse-controlled conditions. Foliar spray applications of the pathogen and the fungal BCA in two treatments, i.e., Z. tritici (Zt) alone and Z. tritici along with C. rosea (ZtCr) were used to assess the disease progress over time. The absence and presence of C. rosea in Zt and ZtCr, respectively, allowed the dissection of variation for plant disease resistance and biocontrol efficacy. The study showed significant phenotypic variation among plant genotypes for disease progression in both Zt and ZtCr treatments. Moreover, disease progress for individual plant genotypes differed significantly between the two treatments, indicating a plant genotype-dependent variation in biocontrol efficacy. For the phenotypic variation in disease progress and biocontrol efficacy, a genome-wide association study using a 20K single-nucleotide polymorphism (SNP) marker array was also performed. In total, five distinct SNP markers associated with disease resistance and four SNP markers associated with C. rosea biocontrol efficacy were identified. ConclusionsThis work serves as a foundation to further characterize the genetic basis of plant-BCA interactions, facilitating opportunities for concurrent breeding for disease resistance and biocontrol efficacy.

plant biology↗