Results 51 to 60 of about 2,522,103 (159)

Harnessing Natural Diversity and Rational Design for Enhanced Plant Immunity

open access: yesPlant, Cell &Environment, EarlyView.
ABSTRACT Plant pathogens cause crop loss. Genetic resistance, through natural genetic diversity or engineered resistance, can be highly effective in protecting plants from infection. Genetic resistance from wild relatives of crops has been successfully introduced into crops to control pathogen infection.
Nathan Diplock, Jennifer D. Lewis
wiley   +1 more source

A novel sunflower broomrape race with unusual virulence potentially caused by a mutation

open access: yesFrontiers in Plant Science, 2023
IntroductionThe sunflower broomrape (Orobanche cumana Wallr.) gene pools of the Guadalquivir Valley and Cuenca province in Spain had predominantly race-F virulence.
Belén Fernández-Melero   +4 more
doaj   +1 more source

Phenotypic expression of the gene‐for‐gene interaction in plant pathogenic bacteria: An implication for resistance to bacterial diseases by plants

open access: yesAgrosystems, Geosciences &Environment, Volume 9, Issue 3, September 2026.
Abstract Plant pathogenic bacteria cause massive losses in agriculture and damage to natural plant habitats. Bacterial pathogens not only reduce crop production, but they also reduce crop quality by releasing toxins into the environment. Pathogenic bacteria that invade plant tissues must overcome the plant's defense mechanisms. Plants possess an innate
Muluken Getahun, Zelalem Bekeko
wiley   +1 more source

The Putative Effector Protein AlPE1 From Ascochyta lentis Causes Necrosis in Lentil and Pea

open access: yesLegume Science, Volume 8, Issue 3, September 2026.
ABSTRACT Ascochyta blight of lentil is caused by the hemibiotrophic fungal pathogen species Ascochyta lentis. Recent advances in whole genome sequencing have led to the availability of many fungal genome assemblies, enabling comparison of isolates that can lead to the identification of virulence genes or effectors.
Robert C. Lee   +4 more
wiley   +1 more source

Putting the Phytophthora infestans genome sequence at work: multiple novel avirulence and potato resistance gene candidates revealed [PDF]

open access: yes, 2011
Individual variation in milk yield response to concentrate intake and milking interval length During the last century in the Netherlands milk production per cow has almost tripled.
Rietman, H.
core  

No Evidence for Binding Between Resistance Gene Product Cf-9 of Tomato and Avirulence Gene Product AVR9 of Cladosporium fulvum

open access: yesMolecular Plant-Microbe Interactions, 2001
The gene-for-gene model postulates that for every gene determining resistance in the host plant, there is a corresponding gene conditioning avirulence in the pathogen.
Rianne Luderer   +15 more
doaj   +1 more source

Sequence variants of the Phytophthora sojae RXLR effector Avr3a/5 are differentially recognized by Rps3a and Rps5 in soybean. [PDF]

open access: yesPLoS ONE, 2011
The perception of Phytophthora sojae avirulence (Avr) gene products by corresponding soybean resistance (Rps) gene products causes effector triggered immunity. Past studies have shown that the Avr3a and Avr5 genes of P.
Suomeng Dong   +8 more
doaj   +1 more source

Natural variation in the atypical resistance gene Ptr confers broad‐spectrum neck blast resistance in rice

open access: yesThe Plant Genome, Volume 19, Issue 3, September 2026.
Abstract Neck blast (NB), caused by Magnaporthe oryzae, infects rice (Oryza sativa L.) and reduces yield. Knowledge of NB resistance remains limited due to the lack of reliable resistance evaluation methods. Here, we applied a newly established neck injection method and performed a genome‐wide association study (GWAS) on 335 diverse accessions from the
Ian Paul Navea   +11 more
wiley   +1 more source

Genome Organization and Evolution of the AVR-Pita Avirulence Gene Family in the Magnaporthe grisea Species Complex

open access: yesMolecular Plant-Microbe Interactions, 2008
The avirulence (AVR) gene AVR-Pita in Magnaporthe oryzae prevents the fungus from infecting rice cultivars containing the resistance gene Pi-ta. A survey of isolates of the M.
Chang Hyun Khang   +4 more
doaj   +1 more source

xopAC-triggered immunity against Xanthomonas depends on Arabidopsis receptor-like cytoplasmic kinase genes PBL2 and RIPK. [PDF]

open access: yesPLoS ONE, 2013
Xanthomonas campestris pv. campestris (Xcc) colonizes the vascular system of Brassicaceae and ultimately causes black rot. In susceptible Arabidopsis plants, XopAC type III effector inhibits by uridylylation positive regulators of the PAMP-triggered ...
Endrick Guy   +6 more
doaj   +1 more source

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