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PUBMED FOR HANDHELDS

Journal Abstract Search


196 related items for PubMed ID: 27592173

  • 1. ROP6 is involved in root hair deformation induced by Nod factors in Lotus japonicus.
    Ke D, Li X, Han Y, Cheng L, Yuan H, Wang L.
    Plant Physiol Biochem; 2016 Nov; 108():488-498. PubMed ID: 27592173
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  • 4. SPIKE1 Activates the GTPase ROP6 to Guide the Polarized Growth of Infection Threads in Lotus japonicus.
    Liu J, Liu MX, Qiu LP, Xie F.
    Plant Cell; 2020 Dec; 32(12):3774-3791. PubMed ID: 33023954
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  • 7. A Lotus japonicus cytoplasmic kinase connects Nod factor perception by the NFR5 LysM receptor to nodulation.
    Wong JEMM, Nadzieja M, Madsen LH, Bücherl CA, Dam S, Sandal NN, Couto D, Derbyshire P, Uldum-Berentsen M, Schroeder S, Schwämmle V, Nogueira FCS, Asmussen MH, Thirup S, Radutoiu S, Blaise M, Andersen KR, Menke FLH, Zipfel C, Stougaard J.
    Proc Natl Acad Sci U S A; 2019 Jul 09; 116(28):14339-14348. PubMed ID: 31239345
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  • 8. Lotus SHAGGY-like kinase 1 is required to suppress nodulation in Lotus japonicus.
    Garagounis C, Tsikou D, Plitsi PK, Psarrakou IS, Avramidou M, Stedel C, Anagnostou M, Georgopoulou ME, Papadopoulou KK.
    Plant J; 2019 Apr 09; 98(2):228-242. PubMed ID: 30570783
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  • 9. Microtubule array formation during root hair infection thread initiation and elongation in the Mesorhizobium-Lotus symbiosis.
    Perrine-Walker FM, Lartaud M, Kouchi H, Ridge RW.
    Protoplasma; 2014 Sep 09; 251(5):1099-111. PubMed ID: 24488109
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  • 11. SCARN a Novel Class of SCAR Protein That Is Required for Root-Hair Infection during Legume Nodulation.
    Qiu L, Lin JS, Xu J, Sato S, Parniske M, Wang TL, Downie JA, Xie F.
    PLoS Genet; 2015 Oct 09; 11(10):e1005623. PubMed ID: 26517270
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  • 13. A small GTPase of the Rab family is required for root hair formation and preinfection stages of the common bean-Rhizobium symbiotic association.
    Blanco FA, Meschini EP, Zanetti ME, Aguilar OM.
    Plant Cell; 2009 Sep 09; 21(9):2797-810. PubMed ID: 19749154
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  • 14. Root hair deformation of symbiosis-deficient mutants of Lotus japonicus by application of Nod factor from Mesorhizobium loti.
    Maekawa-Yoshikawa M, Murooka Y.
    Microbes Environ; 2009 Sep 09; 24(2):128-34. PubMed ID: 21566365
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  • 15. Gene expression and localization of a β-1,3-glucanase of Lotus japonicus.
    Osuki KI, Hashimoto S, Suzuki A, Araragi M, Takahara A, Kurosawa M, Kucho KI, Higashi S, Abe M, Uchiumi T.
    J Plant Res; 2016 Jul 09; 129(4):749-758. PubMed ID: 26951113
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  • 17. Rhizobial and mycorrhizal symbioses in Lotus japonicus require lectin nucleotide phosphohydrolase, which acts upstream of calcium signaling.
    Roberts NJ, Morieri G, Kalsi G, Rose A, Stiller J, Edwards A, Xie F, Gresshoff PM, Oldroyd GE, Downie JA, Etzler ME.
    Plant Physiol; 2013 Jan 09; 161(1):556-67. PubMed ID: 23136382
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  • 19. Knockdown of LjALD1, AGD2-like defense response protein 1, influences plant growth and nodulation in Lotus japonicus.
    Chen W, Li X, Tian L, Wu P, Li M, Jiang H, Chen Y, Wu G.
    J Integr Plant Biol; 2014 Nov 09; 56(11):1034-41. PubMed ID: 24797909
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  • 20. Arabidopsis ROP1 and ROP6 influence germination time, root morphology, the formation of F-actin bundles, and symbiotic fungal interactions.
    Venus Y, Oelmüller R.
    Mol Plant; 2013 May 09; 6(3):872-86. PubMed ID: 23118477
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