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14 results for “Auxin transport”
Fig. 6 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 6. Scutellarin changes the distribution of WOX5 in the root meristem. Spatial expression of WOX5::GFP in the root meristem. Top panel, naringenin (NA) treatments for 5 days. Bottom panel, scutellarin (S) treatments for 5 days. Bar, 30 μm.
Fig. 5. Flavonoids with and without 6 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 5. Flavonoids with and without 6-hydroxyl groups cause different auxin distributions at the root meristem. (a) IAA concentration in A. thaliana seedlings mocktreated or treated with 100 μM scutellarin for 10 days. The values are the means ± SDs (n = 5). (b) Expression of DR5:GFP after mock treatment or treatment with 100 μM scutellarin, 100 μM scutellarein, or 100 μM naringenin for 10 days in A. thaliana root tips. White arrow, QC position. Bar, 30 μm.
Fig. 4. Flavonoids with and without 6 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 4. Flavonoids with and without 6-hydroxyl groups have different effects on PAT. (a) Effects of scutellarin and scutellarein on PAT in A. thaliana root tips. Fiveday-old seedlings were mock-treated with or treated with the indicated reagents for 9 days (100 μM scutellarin, 100 μM scutellarein, 20 μM TIBA). (b) Gene expression of PIN1, PIN2 and AUX1 after mock or 100 μM scutellarin treatment for 10 days in A. thaliana roots. ** indicates that the value is significantly different from that of the mock-treated group (P <0.01, n = 3). (c) and (d) Expression of PIN1:GFP aPnd IN2:GFP in A. thaliana root tips after mock treatment or treatment with 100 μM scutellarin, 100 μM scutellarein, or 100 μM narigenin for 10 days. Bar, 100 μm.
Fig. 1 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 1. (a) Schematic of the Arabidopsis root meristem with each cell type. QC, quiescent center. CEI, cortex/endodermal initials. VI, vascular initials. LRC, lateral root cap. Ep, epidermis initials. CSC, columella stem cells. CC, columella Cells. (b) Schematic of polar auxin transport (PAT). (c) Basic flavonoid structures. (d) Structures of all known flavonoid inhibitors of PAT (Jacobs and Rubery 1988; Geldner et al., 2001; Laffont et al., 2010; Stenlid 1976). (e) Structures of the flavonoids tested in this study.
Expression data of Medicago truncatula skl1-1 roots treated with S. meliloti wild-type or auxin transport inhibitors
GEO Series GSE28172. Medicago truncatula; Sinorhizobium meliloti. 4 samples. Type: Expression profiling by array.
Rice root: Control vs auxin transport inhibitor N-1-naphthylphthalamic (NPA) treatment; WT vs iaa13 mutant.
GEO Series GSE130131. Oryza sativa. 6 samples. Type: Expression profiling by array.
A Functional Allele of CsFUL1 Regulates Fruit Length through Repressing CsSUP and Inhibiting Auxin Transport in Cucumber
GEO Series GSE103592. Cucumis sativus. 4 samples. Type: Expression profiling by high throughput sequencing.
Expression data of Medicago truncatula Jemalong A17 roots treated with S. meliloti exoA mutant or auxin transport inhibitors
GEO Series GSE28171. Sinorhizobium meliloti; Medicago truncatula. 4 samples. Type: Expression profiling by array.
Expression data of Medicago truncatula Jemalong A17 roots treated with auxin transport inhibitors
GEO Series GSE27991. Sinorhizobium meliloti; Medicago sativa; Medicago truncatula. 6 samples. Type: Expression profiling by array.
Expression data from Medicago truncatula roots treated with S. meliloti wild-type or exoA mutant bacteria, or auxin transport inhibitors
GEO Series GSE28174. Medicago sativa; Medicago truncatula; Sinorhizobium meliloti. 23 samples. Type: Expression profiling by array.
Fig. 3. Flavonoids with and without 6 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 3. Flavonoids with and without 6-hydroxyl groups have different effects on root length. The effects of scutellarin, scutellarein, rutin and naringenin on A. thaliana root length were examined. Seeds were germinated and mock-treated or grown in 50 μM scutellarin, 50 μM scutellarein, 50 μM rutin or 50 μM naringenin for 7 days.
Fig. 2 in Polar auxin transport May Be responsive to specific features of flavonoid structure
Fig. 2. Scutellarin promotes root length. (a) Physiological effects of scutellarin on A. thaliana root length. Photographs of root length after scutellarin treatment for 7 days. S, scutellarin. (b) Measurements of A. thaliana root length after scutellarin treatment for 7 days. The values are the means ± SDs (n = 25). * indicates that the value is different from that of the control (P <0.05). (c) Effects of scutellarin (100 μM for 7 d) on the elongation zone in A. thaliana root tips. Confocal images of root tips stained with propidium iodide.
Modulation of Polar Auxin Transport Identifies the Molecular Determinants of Source-Sink Carbon Relationships and Sink Strength in Poplar
GEO Series GSE232245. Populus tremula x Populus alba. 64 samples. Type: Expression profiling by high throughput sequencing.
BTA1 controls tiller angle and shoot gravitropism by regulating auxin transport and signaling in rice
GEO Series GSE126759. Oryza sativa. 4 samples. Type: Expression profiling by high throughput sequencing.
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