Molecular genetic analysis of phototropism in Arabidopsis
about
Regulation of polar auxin transport by protein and lipid kinasesHormone-mediated growth dynamics of the barley pericarp as revealed by magnetic resonance imaging and transcript profilingFunctional characterization of Arabidopsis phototropin 1 in the hypocotyl apex.Arabidopsis DNA topoisomerase I alpha is required for adaptive response to light and flower development.Plasma membrane H⁺ -ATPase regulation is required for auxin gradient formation preceding phototropic growth.Plant flavoprotein photoreceptorsEvolution of three LOV blue light receptor families in green plants and photosynthetic stramenopiles: phototropin, ZTL/FKF1/LKP2 and aureochrome.ROS-talk - how the apoplast, the chloroplast, and the nucleus get the message throughPhototropism: some history, some puzzles, and a look ahead.Protein phosphatases PP2A, PP4 and PP6: mediators and regulators in development and responses to environmental cues.Gene expression changes triggered by end-of-day far-red light treatment on early developmental stages of Eustoma grandiflorum (Raf.) Shinn.Phytochrome A Mediates Blue-Light Enhancement of Second-Positive Phototropism in ArabidopsisDevelopment of transgenic crops based on photo-biotechnology.Molecular mechanisms and ecological function of far-red light signalling.Light-dependent gravitropism and negative phototropism of inflorescence stems in a dominant Aux/IAA mutant of Arabidopsis thaliana, axr2.Differential roles of auxin efflux carrier PIN proteins in hypocotyl phototropism of etiolated Arabidopsis seedlings depend on the direction of light stimulus.PINOID functions in root phototropism as a negative regulator.Phototropins function in high-intensity blue light-induced hypocotyl phototropism in Arabidopsis by altering cytosolic calcium.A novel blue-light phototropic response is revealed in roots of Arabidopsis thaliana in microgravity.Arabidopsis ROOT PHOTOTROPISM2 Contributes to the Adaptation to High-Intensity Light in Phototropic Responses.Lipid anchoring of Arabidopsis phototropin 1 to assess the functional significance of receptor internalization: should I stay or should I go?Phototropism: growing towards an understanding of plant movement.Blue-light regulation of ZmPHOT1 and ZmPHOT2 gene expression and the possible involvement of Zmphot1 in phototropism in maize coleoptiles.PINOID AGC kinases are necessary for phytochrome-mediated enhancement of hypocotyl phototropism in Arabidopsis.Shining Light on the Function of NPH3/RPT2-Like Proteins in Phototropin Signaling.
P2860
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P2860
Molecular genetic analysis of phototropism in Arabidopsis
description
2012 nî lūn-bûn
@nan
2012 թուականի Սեպտեմբերին հրատարակուած գիտական յօդուած
@hyw
2012 թվականի սեպտեմբերին հրատարակված գիտական հոդված
@hy
2012年の論文
@ja
2012年論文
@yue
2012年論文
@zh-hant
2012年論文
@zh-hk
2012年論文
@zh-mo
2012年論文
@zh-tw
2012年论文
@wuu
name
Molecular genetic analysis of phototropism in Arabidopsis
@ast
Molecular genetic analysis of phototropism in Arabidopsis
@en
Molecular genetic analysis of phototropism in Arabidopsis
@nl
type
label
Molecular genetic analysis of phototropism in Arabidopsis
@ast
Molecular genetic analysis of phototropism in Arabidopsis
@en
Molecular genetic analysis of phototropism in Arabidopsis
@nl
prefLabel
Molecular genetic analysis of phototropism in Arabidopsis
@ast
Molecular genetic analysis of phototropism in Arabidopsis
@en
Molecular genetic analysis of phototropism in Arabidopsis
@nl
P2860
P921
P3181
P356
P1476
Molecular genetic analysis of phototropism in Arabidopsis
@en
P2093
P2860
P304
P3181
P356
10.1093/PCP/PCS111
P407
P577
2012-08-03T00:00:00Z