Trichoderma (teleomorph Hypocrea) is a fungal genus found in many ecosystems. Trichoderma spp. can reduce the severity of plant diseases by inhibiting plant pathogens in the soil through their highly potent antagonistic and mycoparasitic activity. Moreover, as revealed by research in recent decades, some Trichoderma strains can interact directly with roots, increasing plant growth potential, resistance to disease and tolerance to abiotic stresses. This mini-review summarizes the main findings concerning the Trichoderma-plant interaction, the molecular dialogue between the two organisms, and the dramatic changes induced by the beneficial fungus in the plant. Efforts to enhance plant resistance and tolerance to a broad range of stresses by expressing Trichoderma genes in the plant genome are also addressed.
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http://dx.doi.org/10.1099/mic.0.052274-0 | DOI Listing |
PLoS One
January 2025
BASF- Global Agricultural Solutions, Durham, North Carolina, United States of America.
Trichoderma spp. are among the most studied biocontrol agents. While extensive work has been done to understand Trichoderma antagonistic mechanisms, additional research is needed to fully understand how Trichoderma spp.
View Article and Find Full Text PDFJ Basic Microbiol
January 2025
Department of Molecular and Translational Medicine, Division of Pharmacology, University of Brescia, Brescia, Italy.
Soil-borne plant pathogens are the most damaging pathogens responsible for severe crop damage. A conventional chemotherapy approach to these pathogens has numerous environmental issues, while biological control agents (BCAs) are less promising under field conditions. There is an immediate need to develop an integrated strategy for utilizing nanoparticles and biocontrol to manage soil-borne pathogens, such as Fusarium wilt, effectively.
View Article and Find Full Text PDFInt J Mol Sci
December 2024
Institute of Animal Husbandry, Pasture and Green Agriculture, Gansu Academy of Agricultural Sciences, Lanzhou 730070, China.
is a destructive pathogen responsible for sunflower sclerotinia rot, resulting in substantial yield and economic losses worldwide. species have demonstrated the capacity to inhibit plant pathogen growth through the production of secondary metabolites. However, there are fewer recent studies focusing on the application of metabolites in inhibiting growth and development and controlling sunflower sclerotinia rot disease.
View Article and Find Full Text PDFFEBS Lett
January 2025
Department of Symbiotic Science of Environment and Natural Resources, United Graduate School of Agricultural Science, Tokyo University of Agriculture and Technology, Fuchu, Japan.
Carbonyl sulfide hydrolase (COSase) is a unique enzyme that exhibits high activity towards carbonyl sulfide (COS) but low carbonic anhydrase (CA) activity, despite belonging to the CA family. COSase was initially identified in a sulfur-oxidizing bacterium and later discovered in the ascomycete Trichoderma harzianum strain THIF08. The COSase from T.
View Article and Find Full Text PDFAntioxidants (Basel)
December 2024
College of Plant Protection, Gansu Agricultural University, Lanzhou 730070, China.
Pear fruit brown rot, caused by , affects pear fruit yields and quality. The present study determined T6 (T6) peptaibols as a biological control alternative to synthetic fungicides and assessed its efficacy against through dual plate culture and surface spraying at different concentrations. T6 peptaibols effectively inhibited growth, achieving an 85.
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