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26 results for “Hyptis”

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zenodo32/100

Figs. 3–7. Coelocephalapion hyptidis. 3 in A New Species of Coelocephalapion Wagner (Apionidae) from Venezuela with Host Hyptis suaveolens (L.) Poit. (Lamiaceae)

Figs. 3–7. Coelocephalapion hyptidis. 3) Median lobe of aedeagus, dorsal view, scale 5 0.05 mm; 3a) endophallus, detail of armature, scale 5 0.02 mm; 4) median lobe of aedeagus, dorsal view, detail of apex, scale 5 0.02 mm; 5) median lobe of aedeagus, lateral view, scale 5 0.05 mm; 6) Median lobe of aedeagus, lateral view, detail of apex, scale 5 0.02 mm; 7) Spiculum gastrale, scale 5 0.05 mm.

opennotspecifiedMar 2003View details →
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FIGURE 1 in There and back again: Oocephalus piranii is better treated as Hyptis (Hyptidinae, Lamiaceae)

FIGURE 1. Hyptis piranii: A: Three-flowered inflorescence; B: Detail of stylopodium overtopping the ovary; C: Inflorescence hidden in the axil of leaf-like bract on a flowering branch. Images: A and B taken from Zappi et al. CFCR 8542; C: Guilherme Antar.

opennotspecifiedJan 2022View details →
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FIGURE 16. Hyptis lorentziana Hoffmann. A. Plant. B. Flower. C. Calyx expanded, inner view. D. Corolla expanded, inner view. E in Synopsis of subtribe Hyptidinae (Lamiaceae) in Argentina

FIGURE 16. Hyptis lorentziana Hoffmann. A. Plant. B. Flower. C. Calyx expanded, inner view. D. Corolla expanded, inner view. E, Calyx. Image from Crespo (1979), modified, reprinted with permission.

opennotspecifiedNov 2015View details →
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FIGURE 13. Hyptis lagenaria A in Synopsis of subtribe Hyptidinae (Lamiaceae) in Argentina

FIGURE 13. Hyptis lagenaria A.St.-Hil. ex Benth. (from Deginani 1645, SI). A. Plant branch. B. Bracteole. C. Calyx. D. Interior of calyx with a band of thick and short hairs.

opennotspecifiedNov 2015View details →
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FIGURE 18. Hyptis uliginosa A in Synopsis of subtribe Hyptidinae (Lamiaceae) in Argentina

FIGURE 18. Hyptis uliginosa A.St.-Hil. ex Bentham (from Keller 141, CTES and Keller 4976, CTES). A. Plant general aspect. B. Calyx.

opennotspecifiedNov 2015View details →
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FIGURE 14. Hyptis lappacea Benth. A. Plant branch. B. Bracteole. C. Flower. D. Corolla expanded, inner view. E in Synopsis of subtribe Hyptidinae (Lamiaceae) in Argentina

FIGURE 14. Hyptis lappacea Benth. A. Plant branch. B. Bracteole. C. Flower. D. Corolla expanded, inner view. E. Nutlet, ventral view. Image from Crespo (1979), modified, reprinted with permission.

opennotspecifiedNov 2015View details →
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FIGURE 5 in Discovery of Hyptis pseudolantana in Jalisco and Michoacán, and description of H. cualensis and H. macvaughii (Ocimeae, Lamiaceae), two new species from western Mexico

FIGURE 5. Hyptis macvaughii spiciform and racemose terminal inflorescences (A, C, E), stem (B), verticillaster, calyx and corolla detail (D), infructescence (F, G).

opennotspecifiedMar 2014View details →
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FIGURE 2 in Discovery of Hyptis pseudolantana in Jalisco and Michoacán, and description of H. cualensis and H. macvaughii (Ocimeae, Lamiaceae), two new species from western Mexico

FIGURE 2. Hyptis pseudolantana terminal spiciform inflorescences (A), cyme, calyx and corolla detail (B, D), and habit (C). Hyptis cualensis terminal spiciform inflorescences (E), pectinate opposite cymes, calyx and corolla detail (F, G), and infructescence (H).

opennotspecifiedMar 2014View details →
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FIGURE 1 in Discovery of Hyptis pseudolantana in Jalisco and Michoacán, and description of H. cualensis and H. macvaughii (Ocimeae, Lamiaceae), two new species from western Mexico

FIGURE 1. Distribution map of Hyptis pseudolantana (squares), H. cualensis (triangles), and H. macvaughii (dots) in Mexico.

opennotspecifiedMar 2014View details →
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FIGURE 3. Hyptis lavoisierifolia A.Soares, J.F.B in Hyptis lavoisierifolia, a new species from the noteworthy Hyptis subsect. Pachyphyllae (Lamiaceae-Hyptidinae) endemic to Chapada dos Veadeiros region, Goiás, Brazil

FIGURE 3. Hyptis lavoisierifolia A.Soares, J.F.B.Pastore & Harley: A: Upper branch detail showing indumentum and inflorescence.; B: Mature individual.

opennotspecifiedJun 2021View details →
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FIGURE 2 in Hyptis lavoisierifolia, a new species from the noteworthy Hyptis subsect. Pachyphyllae (Lamiaceae-Hyptidinae) endemic to Chapada dos Veadeiros region, Goiás, Brazil

FIGURE 2. Distribution map of Hyptis lavoisierifolia A.Soares, J.F.B.Pastore & Harley. Red lines indicate Chapada dos Veadeiros National Park limits. White star: Hyptis lavoisierifolia A.Soares, J.F.B.Pastore & Harley; White circle with black dot: Capital town of Alto Paraíso de Goiás.

opennotspecifiedJun 2021View details →
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FIGURE 1. Hyptis lavoisierifolia A.Soares, J.F.B in Hyptis lavoisierifolia, a new species from the noteworthy Hyptis subsect. Pachyphyllae (Lamiaceae-Hyptidinae) endemic to Chapada dos Veadeiros region, Goiás, Brazil

FIGURE 1. Hyptis lavoisierifolia A.Soares, J.F.B.Pastore & Harley: A: Habit; B: Leaf (abaxial and adaxial surfaces); C: Cymule; D: Outer bracteole (outer and inner surfaces); E: inner bracteole (outer and inner surfaces); F: Flower; G: Calyx at anthesis (outer and inner surfaces); H: Opened corolla; I: Gynoecium. All structures and habit drawn from Soares 640 (UFRN). Illustration by Klei Sousa.

opennotspecifiedJun 2021View details →
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Fig. 4 in Distribution of 5,6-dihydro-α-pyrones by electrospray ionization ion trap mass spectrometry in different aerial parts of Hyptis monticola

Fig. 4. UHPLC base peak ion chromatogram of CH2Cl2-soluble extract from leaves of Hyptis monticola. UHPLC-ESI-MS instrumental conditions: column C-18 (2.1 × 150 mm, 2 μm); mobile phase, gradient CH3CN:H2O; flow rate, 0.25 mL/min. Peaks assignments: tR 36.7 min =monticolide A (1); tR 27.6 min = monticolide B (2), tR 23.6 min = monticolide C (3); tR 29.6 min = monticolide D (4); tR 31.1 min = monticolide E (5); tR 19.1 min = monticolide F (6).

opennotspecifiedMay 2021View details →
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Fig. 6 in Distribution of 5,6-dihydro-α-pyrones by electrospray ionization ion trap mass spectrometry in different aerial parts of Hyptis monticola

Fig. 6. Average for the relative quantification of monticolides A-F (1–6) in different plant organs (n = 15, mean with SD).

opennotspecifiedMay 2021View details →
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Fig. 3 in Distribution of 5,6-dihydro-α-pyrones by electrospray ionization ion trap mass spectrometry in different aerial parts of Hyptis monticola

Fig. 3. Comparison of leaves extracts base peak chromatograms obtained with different solvents by UHPLC-ESI(+)-IT-MS. Analytical conditions: gradient mobile phase of CH3CN and 0.1% (v/v) aqueous formic acid; flow rate 0.25 mL/min; column C-18, 2.1 × 150 mm, 2 μm; sample concentration 0.5 mg/mL; mass spectrometry detection with ESI ionization in positive mode in the range of m/z 200 to 500. Peaks assignments: monticolides A-F, compounds 1–6.

opennotspecifiedMay 2021View details →
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Fig. 2 in Distribution of 5,6-dihydro-α-pyrones by electrospray ionization ion trap mass spectrometry in different aerial parts of Hyptis monticola

Fig. 2. Recycling HPLC chromatogram for the separation of diacetylated monticolides B (2) and C (3) from the CCC fractions 8–12 (see, Fig. S1). Chromatographic conditions: mobile phase CH3CN; flow rate, 4.7 mL/min; NH2 column, 19 × 150 mm, 10 μm, DAD detector (290 nm); sample concentration, 30 mg/mL.

opennotspecifiedMay 2021View details →
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Fig. 5 in Distribution of 5,6-dihydro-α-pyrones by electrospray ionization ion trap mass spectrometry in different aerial parts of Hyptis monticola

Fig. 5. PCA score plot of different extracts based on the relative abundances of total diagnostic ions for the distribution of monticolides A-F (1–6), which were registered by UHPLC-ESI(+)-IT-MS. Extracts prepared from flowers (HFL), leaves (HFO) and branches (HG). Codes were assigned according to the corresponding season and altitude as follows: HFL1, HFO1 and HG1-Spring collected at a low-altitude (1229 m) in 2013; HFL2, HFGO2 and HG2-winter collected at a low-altitude (1245 m) in 2017; HFL3, HFO3 and HG3-winter collected at a high-altitude (1310 m) in 2017; HFL4, HFO4 and HG4-summer collected at a low-altitude (1245 m) in 2018; and HFL5, HFO5 and HG5-summer collected at a high-altitude (1310 m) in 2018.

opennotspecifiedMay 2021View details →
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Fig. 4 in Dihydro-furanones from Hyptis species: Chemical correlations and DFT-NMR/ECD calculations for stereochemical assignments

Fig. 4. The four most relevant global-minimum energy conformations of 1 modeled in CHCl3 solution accounting for the 78% of the total population.

opennotspecifiedNov 2020View details →
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Fig. 3. Chemical correlations between 5,6 in Dihydro-furanones from Hyptis species: Chemical correlations and DFT-NMR/ECD calculations for stereochemical assignments

Fig. 3. Chemical correlations between 5,6-dihydro-2H-pyran-2-ones and 2(5H)-furanones. A possible biogenetic correlation is indicated by a dotter arrow.

opennotspecifiedNov 2020View details →
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Fig. 1. 1H in Dihydro-furanones from Hyptis species: Chemical correlations and DFT-NMR/ECD calculations for stereochemical assignments

Fig. 1. 1H NMR spectral sections of peracetylated montecofuranolide (2). (A) Simulated spectrum using DFT 3J of peracetyl-5′-epi-synrotolide (5) in gas H,H phase with chemical shifts of the experimental spectrum of compound 2 and coupling constants of monticolide A (6) for J ′ ′ 3 -4 proS = 8.7 Hz, J ′ ′ 3 -4 proR = 4 Hz to simulate the multiplicity for H-4′. (B) Fully simulated spectrum obtained by iteration of chemical shifts, 3J, and linewidths of compound 2. (C) ExperiH,H mental spectrum in CDCl3 (400 MHz).

opennotspecifiedNov 2020View details →

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