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Effectors and Effector Delivery in
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Vyšlo v časopise: Effectors and Effector Delivery in. PLoS Pathog 10(1): e32767. doi:10.1371/journal.ppat.1003826
Kategorie: Pearls
prolekare.web.journal.doi_sk: https://doi.org/10.1371/journal.ppat.1003826Souhrn
article has not abstract
Zdroje
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2. DjameiA, KahmannR (2012) Ustilago maydis: Dissecting the molecular interface between pathogen and plant. PLoS Pathog 8: e1002955 doi:10.1371/journal.ppat.1002955
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5. ParkC, ChenS, ShirsekarG, ZhouB, KhangC, et al. (2012) The Magnaporthe oryzae effector Avrpiz-t targets the ring E3 ubiquitin ligase apip6 to suppress pathogen-associated molecular pattern-triggered immunity in rice. Plant Cell 24 : 4748–4762.
6. JiaY, McAdamsSA, BryanGT, HersheyHP, ValentB (2000) Direct interaction of resistance gene and avirulence gene products confers rice blast resistance. EMBO J 19 : 4004–4014.
7. KhangCH, ParkS-Y, LeeY-H, ValentB, KangS (2008) Genome organization and evolution of the AVR-Pita avirulence gene family in the Magnaporthe grisea species complex. Mol Plant Microbe Interact 21 : 658–670.
8. KangSC, SweigardJA, ValentB (1995) The PWL host specificity gene family in the blast fungus Magnaporthe grisea. Mol Plant Microbe Interact 8 : 939–948.
9. PeyyalaR, FarmanML (2006) Magnaporthe oryzae isolates causing gray leaf spot of perennial ryegrass possess a functional copy of the AVR1-CO39 avirulence gene. Mol Plant Pathol 7 : 157–165.
10. YoshidaK, SaitohH, FujisawaS, KanzakiH, MatsumuraH, et al. (2009) Association genetics reveals three novel avirulence genes from the rice blast fungal pathogen Magnaporthe oryzae. Plant Cell 21 : 1573–1591.
11. CesariS, ThilliezG, RibotC, ChalvonV, MichelC, et al. (2013) The rice resistance protein pair RGA4/RGA5 recognizes the Magnaporthe oryzae effectors Avr-Pia and Avr1-CO39 by direct binding. Plant cell 25 : 1463–1481.
12. MentlakTA, KombrinkA, ShinyaT, RyderLS, OtomoI, et al. (2012) Effector-mediated suppression of chitin-triggered immunity by Magnaporthe oryzae is necessary for rice blast disease. Plant Cell 24 : 322–335.
13. MosqueraG, GiraldoMC, KhangCH, CoughlanS, ValentB (2009) Interaction transcriptome analysis identifies Magnaporthe oryzae BAS1-4 as biotrophy-associated secreted proteins in rice blast disease. Plant Cell 21 : 1273–1290.
14. SaitohH, FujisawaS, MitsuokaC, ItoA, HirabuchiA, et al. (2012) Large-scale gene disruption in Magnaporthe oryzae identifies mc69, a secreted protein required for infection by monocot and dicot fungal pathogens. PLoS Pathog 8: e1002711 doi:10.1371/journal.ppat.1002711
15. ChenS, SongkumarnP, VenuRC, GowdaM, BellizziM, et al. (2013) Identification and characterization of in planta-expressed secreted effector proteins from Magnaporthe oryzae that induce cell death in rice. Mol Plant Microbe Interact 26 : 191–202.
16. GiraldoMC, DagdasYF, GuptaYK, MentlakTA, YiM, et al. (2013) Two distinct secretion systems facilitate tissue invasion by the rice blast fungus Magnaporthe oryzae. Nat Commun 4 : 1996.
17. KhangCH, BerruyerR, GiraldoMC, KankanalaP, ParkS-Y, et al. (2010) Translocation of Magnaporthe oryzae effectors into rice cells and their subsequent cell-to-cell movement. The Plant Cell Online 22 : 1388–1403.
18. MentlakTA, TalbotNJ, KrojT (2011) Effector translocation and delivery by the rice blast fungus Magnaporthe oryzae. Effectors in Plant-Microbe Interactions 219–241.
19. RibotC, CesariS, AbidiI, ChalvonV, BournaudC, et al. (2013) The Magnaporthe oryzae effector AVR1CO39 is translocated into rice cells independently of a fungal-derived machinery. Plant J 74 : 1–12.
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