CURRENT CONCEPTS OF ACTIVE DEFENSE IN PLANTS
- 1 September 1998
- journal article
- Published by Annual Reviews in Annual Review of Phytopathology
- Vol. 36 (1) , 59-90
- https://doi.org/10.1146/annurev.phyto.36.1.59
Abstract
▪ Abstract A growing body of evidence indicates that elicitation of primary active defense responses results from a recognition event frequently involving protein-protein interactions. Most pathogen avirulence determinants eliciting resistance gene–dependent responses have been shown to be proteins with no apparent enzymic activity. Disruption of the tertiary and quaternary structure of these proteins abolishes their elicitor activity. Critical to their elicitor activity is their display by the pathogen. Resistance genes are proposed to function as receptors for the eliciting proteins. The most consistent feature of resistance gene products is the presence of potential protein binding domains in the form of leucine-rich repeat regions, and there is direct evidence for the physical interaction of elicitor proteins and receptor proteins in several cases. Thus in many but not all cases the primary recognition event eliciting an active defense response during incompatible interactions appears to be a protein-protein interaction occurring between a specific pathogen protein and a strategically placed receptor protein in the host cell. The interaction of elicitor protein with the receptor protein activates a signal transduction pathway leading to programmed cell death and an oxidative burst.Keywords
This publication has 231 references indexed in Scilit:
- Genetics of plant—pathogen interactionsCurrent Opinion in Biotechnology, 1998
- Structure-function Relationship Between Tobacco Mosaic Virus Coat Protein and Hypersensitivity in Nicotiana sylvestrisJournal of Molecular Biology, 1994
- hrp Genes of Phytopathogenic BacteriaPublished by Springer Nature ,1994
- Conservation of secretion pathways for pathogenicity determinants of plant and animal bacteriaTrends in Microbiology, 1993
- AnXanthomonas citriPathogenicity Gene,pthA,Pleiotropically Encodes Gratuitous Avirulence on NonhostsMolecular Plant-Microbe Interactions®, 1992
- Tobacco Mosaic Virus Elicitor Coat Protein Genes Produce a Hypersensitive Phenotype in TransgenicNicotiana sylvestrisPlantsMolecular Plant-Microbe Interactions®, 1991
- Current ReviewhrpGenes of Phytopathogenic BacteriaMolecular Plant-Microbe Interactions®, 1991
- Inhibition of the hypersensitive reaction of soybean leaves to incompatible Pseudomonas spp. by blasticidin S, streptomycin or elevated temperaturePhysiological Plant Pathology, 1981
- Ultrastructural observations on the development of the hypersensitive reaction in leaves of Phaseolus vulgaris cv. Red Mexican inoculated with Pseudomonas phaseolicola (race 1)Physiological Plant Pathology, 1978
- Ultrastructural changes in tobacco mosaic virus-induced local lesions in Nicotiana tabacum L. cv. “Samsun NN”Physiological Plant Pathology, 1975