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PUBMED FOR HANDHELDS

Journal Abstract Search


382 related items for PubMed ID: 21394084

  • 21. PINOID positively regulates auxin efflux in Arabidopsis root hair cells and tobacco cells.
    Lee SH, Cho HT.
    Plant Cell; 2006 Jul; 18(7):1604-16. PubMed ID: 16731587
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  • 23. PID/WAG-mediated phosphorylation of the Arabidopsis PIN3 auxin transporter mediates polarity switches during gravitropism.
    Grones P, Abas M, Hajný J, Jones A, Waidmann S, Kleine-Vehn J, Friml J.
    Sci Rep; 2018 Jul 06; 8(1):10279. PubMed ID: 29980705
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  • 24. PIN polarity regulation by AGC-3 kinases and ARF-GEF: a recurrent theme with context dependent modifications for plant development and response.
    Dhonukshe P.
    Plant Signal Behav; 2011 Sep 06; 6(9):1333-7. PubMed ID: 21852755
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  • 25. Proper PIN1 distribution is needed for root negative phototropism in Arabidopsis.
    Zhang KX, Xu HH, Gong W, Jin Y, Shi YY, Yuan TT, Li J, Lu YT.
    PLoS One; 2014 Sep 06; 9(1):e85720. PubMed ID: 24465665
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  • 26. PINOID functions in root phototropism as a negative regulator.
    Haga K, Sakai T.
    Plant Signal Behav; 2015 Sep 06; 10(5):e998545. PubMed ID: 26039488
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  • 28. Low Blue Light Enhances Phototropism by Releasing Cryptochrome1-Mediated Inhibition of PIF4 Expression.
    Boccaccini A, Legris M, Krahmer J, Allenbach-Petrolati L, Goyal A, Galvan-Ampudia C, Vernoux T, Karayekov E, Casal JJ, Fankhauser C.
    Plant Physiol; 2020 Aug 06; 183(4):1780-1793. PubMed ID: 32554507
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  • 31. ARF GEF-dependent transcytosis and polar delivery of PIN auxin carriers in Arabidopsis.
    Kleine-Vehn J, Dhonukshe P, Sauer M, Brewer PB, Wiśniewska J, Paciorek T, Benková E, Friml J.
    Curr Biol; 2008 Apr 08; 18(7):526-31. PubMed ID: 18394892
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  • 33. Determination of Auxin Flow During Phototropic Responses Using Fluorescent Auxin Analogs.
    Sakai T.
    Methods Mol Biol; 2019 Apr 08; 1924():157-163. PubMed ID: 30694473
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  • 34. Dynamic PIN-FORMED auxin efflux carrier phosphorylation at the plasma membrane controls auxin efflux-dependent growth.
    Weller B, Zourelidou M, Frank L, Barbosa IC, Fastner A, Richter S, Jürgens G, Hammes UZ, Schwechheimer C.
    Proc Natl Acad Sci U S A; 2017 Jan 31; 114(5):E887-E896. PubMed ID: 28096328
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  • 35. Roles of AGCVIII Kinases in the Hypocotyl Phototropism of Arabidopsis Seedlings.
    Haga K, Frank L, Kimura T, Schwechheimer C, Sakai T.
    Plant Cell Physiol; 2018 May 01; 59(5):1060-1071. PubMed ID: 29490064
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  • 37. Light-triggered and phosphorylation-dependent 14-3-3 association with NON-PHOTOTROPIC HYPOCOTYL 3 is required for hypocotyl phototropism.
    Reuter L, Schmidt T, Manishankar P, Throm C, Keicher J, Bock A, Droste-Borel I, Oecking C.
    Nat Commun; 2021 Oct 21; 12(1):6128. PubMed ID: 34675219
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  • 38. Auxin methylation is required for differential growth in Arabidopsis.
    Abbas M, Hernández-García J, Pollmann S, Samodelov SL, Kolb M, Friml J, Hammes UZ, Zurbriggen MD, Blázquez MA, Alabadí D.
    Proc Natl Acad Sci U S A; 2018 Jun 26; 115(26):6864-6869. PubMed ID: 29899148
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  • 39. The ABC subfamily B auxin transporter AtABCB19 is involved in the inhibitory effects of N-1-naphthyphthalamic acid on the phototropic and gravitropic responses of Arabidopsis hypocotyls.
    Nagashima A, Uehara Y, Sakai T.
    Plant Cell Physiol; 2008 Aug 26; 49(8):1250-5. PubMed ID: 18556728
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