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33 results for “glandular trichomes”
Fig. 4 in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 4. Polyalthic acid improved photosynthetic efficiency (A–F) and expression of peroxidative enzyme genes (G) of A. thaliana seedlings upon UV radiation. The different letters a, b and c represent significant differences according to one-way ANOVA (p <0.05). Error bars indicate the standard error of the mean (n = 5).
Fig. 3 in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 3. Polyalthic acid improved the resistance of A. thaliana to UV radiation and cold stresses. (A and D) A. thaliana seedlings grown in medium containing DMSO (A) and polyalthic acid (D) under normal growth conditions. (B and E) A. thaliana seedlings grown in medium containing DMSO (B) and polyalthic acid (E) after UV radiation stress. (C and F) A. thaliana seedlings grown in medium containing DMSO (C) and polyalthic acid (F) after cold stress. (G) The biomass of A. thaliana seedlings treated with polyalthic acid upon UV radiation and cold stresses. (H) MDA content of A. thaliana seedlings treated with polyalthic acid upon UV radiation and cold stresses. The different letters a, b, c and d represent significant differences according to one-way ANOVA (p <0.05). Error bars indicate the standard error of the mean (n = 5).
Fig. 6. A in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 6. A hypothetical working model for the roles of polyalthic acid in peltate GTs of C. vestita in enhancing the plant adaptation to abiotic stresses. Dashed arrows indicate the possible pathway in this work, and solid arrows represent the pathways that have already been verified in this work.
Fig. 1 in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 1. Morphology, collection and metabolic analysis of Colquhounia vestita peltate glandular trichomes (GTs). (A) C. vestita in bloom in a natural habitat. (B) Peltate GTs on the abaxial leaf surface (scale bar = 10 μm). (C) Capitate GTs on the abaxial leaf surface (scale bar = 10 μm). (D) Intact peltate GTs before laser microdissection (LMD) (scale bar = 100 μm). (E) The remaining leaf tissue after LMD (scale bar = 100 μm). (F) Collected peltate GTs (scale bar = 200 μm). (G) Total ion chromatogram of the methanol extract of microdissected peltate GTs using UPLC-MS/MS. (H–J) MS spectra of peaks 1–3.
Fig. 2 in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 2. Chemical structures of 5-epi-hardwickiic acid (1), polyalthic acid (2), and E-communic acid (3).
Fig. 5 in Peltate glandular trichomes of Colquhounia vestita harbor diterpenoid acids that contribute to plant adaptation to UV radiation and cold stresses
Fig. 5. Polyalthic acid improved the Ca2+ concentration in the root tips of A. thaliana seedlings (A–F) and gene expression involved in the Ca2+ signalling pathway (G) upon cold stress. The different letters a, b, c and d indicate significant differences according to one-way ANOVA (p <0.05). Error bars indicate the standard error of the mean (n = 5).
Fig. 4. Key HMBC and 1H-1H in Antifeedant, cytotoxic, and anti-inflammatory neo-clerodane diterpenoids in the peltate glandular trichomes and fresh leaves of Ajuga forrestii
Fig. 4. Key HMBC and 1H-1H COSY correlations of compounds 8a/b and 9a/b.
Fig. 3 in Antifeedant, cytotoxic, and anti-inflammatory neo-clerodane diterpenoids in the peltate glandular trichomes and fresh leaves of Ajuga forrestii
Fig. 3. Proposed biosynthetic pathway of the neo-clerodane diterpenoids in A. forrestii.
Identification and Evaluation of Diterpenoids from Glandular Trichome Secretions of Air/Sun-Cured Tobacco Germplasm Resources
<p>Data set associated with a submitted paper.</p>
Data from: Non-glandular trichomes of Solanum carolinense deter feeding by Manduca sexta caterpillars and cause damage to the gut peritrophic matrix
Open the record for dataset details and reuse information.
Insights into the transcriptional cascade involved in the initial and early phases of glandular trichome development in Nicotiana tabacum [RNAseq_MIXTA]
GEO Series GSE263485. Nicotiana tabacum. 12 samples. Type: Expression profiling by high throughput sequencing.
Insights into the transcriptional cascade involved in the initial and early phases of glandular trichome development in Nicotiana tabacum [DAPseq_MIXTA_ZFP8]
GEO Series GSE263486. Nicotiana tabacum. 9 samples. Type: Genome binding/occupancy profiling by high throughput sequencing.
⁶⁰Co-γ radiation-induced GDH64 NtCYC mutation enhances the glandular trichome density and aroma quality of tobacco via physiological, biochemical, and molecular mechanisms
GEO Series GSE296296. Nicotiana tabacum. 6 samples. Type: Expression profiling by high throughput sequencing.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
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