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61 results for “Eremophila”

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zenodo32/100

Fig. 4 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 4. Trichomes under compound microscope at 400× of Eremophila tietkensii: (a) PERTH 08316899, (b) PERTH 03881202, (c) PERTH 06752519, (d) PERTH 03851281, (e) PERTH 07324545; E. sp. Hamersley Range: (f) PERTH 06653537, (g) PERTH 0653561, (h) PERTH 06017142, (i) PERTH 8521; E. sp. Rudall River: (j) PERTH 08305447, (k) PERTH 03878740; and E. sp. Calvert Range: (l) PERTH 07765886, (m) PERTH 07512821.

opennotspecifiedMar 2022View details →
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Fig. 1 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 1. (a) Eremophila tietkensii. Photograph: R. Fowler. (b) E. sp. Rudall River. Photograph: J. Hurter. (c) E. sp. Calvert Range. Photograph: A. Brown. (d) E. sp. Hamersley Range. Photograph: J. Naaykens.

opennotspecifiedMar 2022View details →
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Fig. 7 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 7. Non-metric multi-dimensional scaling (nMDS) ordination of Eremophila tietkensii and E. sp. Rudall River individuals with pedicels present overlain with groupings from cluster analysis. Numbers indicate geographic areas of individuals as shown in Fig. 2.

opennotspecifiedMar 2022View details →
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Fig. 3 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 3. Scanning electron microscopy (SEM) images of adaxial trichomes on leaves of Eremophila sp. Hamersley Range: (a) PERTH 03557464, (b) PERTH 09105972; E. tietkensii: (c) PERTH 03856275, (d) PERTH 03899918; E. sp. Rudall River: (e) PERTH 03878759, (f) PERTH 04201159; and E. sp. Calvert Range: (g) PERTH 03878570, (h) PERTH 07512821.

opennotspecifiedMar 2022View details →
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Fig. 2 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 2. Collection locations of all PERTH voucher specimens of Eremophila tietkensii, E. sp. Hamersley Range, E. sp. Rudall River and E. sp. Calvert Range in WA. Specimens were assigned to a priori groups numbered 1–7.

opennotspecifiedMar 2022View details →
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Fig. 9 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 9. Principal component analysis of detected SNPs of Eremophila tietkensii, E. sp. Hamersley Range, E. sp. Calvert Range, and E. sp. Rudall River. Inset shows positions of E. tietkensii and E. sp. Rudall River specimens.

opennotspecifiedMar 2022View details →
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Fig. 6 in Resolution of the Eremophila tietkensii (Scrophulariaceae) species complex based on congruence between morphological and molecular pattern analyses

Fig. 6. (a) Non-metric multi-dimensional scaling (nMDS) ordination of all individuals on the basis of selected traits (Table 1) overlain with groupings from cluster analysis (b); and (b) UPGMA classification of all individuals on the basis of selected traits (Table 1).

opennotspecifiedMar 2022View details →
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FIGURE 3 in Description of an enigmatic new genus and new species of Australian Orthotylinae (Insecta: Heteroptera: Miridae) associated with the plant genus Eremophila

FIGURE 3. Male genitalia of Warrumiris viridis. a. Pygophore, dorsal view. b. Right paramere, dorsal view. c. Left paramere, dorsal view. d. Phallotheca, right lateral view. e. Phallotheca, dorsal view. f. Aedeagus, right lateral view. g. Aedeagus, left ventral view. Abbreviations: a = apex; ap = apophysis; lp = left paramere; lsc = lobal sclerites; rbt = right basal tumescence; rp = right paramere; sl = sensory lobe; SG = secondary gonophore.

opennotspecifiedJun 2018View details →
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FIGURE 2 in Description of an enigmatic new genus and new species of Australian Orthotylinae (Insecta: Heteroptera: Miridae) associated with the plant genus Eremophila

FIGURE 2. External morphology of Warrumiris viridis a. Head and first antennal segment, dorsal view. b. First labium segment, ventral view. c. Head, lateral view. d. Pronotum and mesoscutum, dorsal view. e. Thorax, lateral view. f. Pretarsus, lateral view. g. Pygophore, posterior view. h. Pygophore, ventral view. Abbreviations: ae = aedeagus; b = bucculae; c = clypeus; cr = callosite region; d = pronotal disc; ea = evaporative areas; f = frons; L1 = first labial segment; lp = left paramere; max = maxillary plate; mc = mesoscutum; md = mandibular plate; Mts = metathoracic spiracle; p = peritreme; pa = parempodia; pgs = peglike setae; px = proxyphus; rp = right paramere; v = vertex.

opennotspecifiedJun 2018View details →
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FIGURE 5 in Description of an enigmatic new genus and new species of Australian Orthotylinae (Insecta: Heteroptera: Miridae) associated with the plant genus Eremophila

FIGURE 5. Host plants of Warrumiris viridis. a. Eremophila mitchelli. b. Eremophila sturtii. c. Eremophila sturtii.

opennotspecifiedJun 2018View details →
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Fig. 2 in Serrulatane diterpenoids from the leaves of Eremophila glabra and their potential as antihyperglycemic drug leads

Fig. 2. Structures of previously unreported serrulatane-type diterpenoids isolated from leaves of E. glabra. The full chemical names of the compounds 5a, 5c, 7, 8a, 8b, 10b, and 13c are found in the main text.

opennotspecifiedApr 2022View details →
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Fig. 4 in Serrulatane diterpenoids from the leaves of Eremophila glabra and their potential as antihyperglycemic drug leads

Fig. 4. Experimental and calculated electronic circular dichroism spectra of serrulatane-type diterpenoids. A. Experimental ECD of compounds in group A (5a, 5b, 5c, 6, 8b, 9, 11 and 13c). B. Experimental ECD of compounds in group B (8a and 12b). C. Experimental ECD of compounds in group B (7 and 10b). D. Calculated ECD of (1R,4S,11S)-5a model compared to the experimental ECD of 5a. E. Calculated ECD of (1R,4S,11S)-8a model compared to the experimental ECD of 8a. F. Calculated ECD of (1S,2R,4S,11S)-7 model compared to the experimental ECD of 7a.

opennotspecifiedApr 2022View details →
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Fig. 1 in Serrulatane diterpenoids from the leaves of Eremophila glabra and their potential as antihyperglycemic drug leads

Fig. 1. Dual high-resolution α-glucosidase/PTP1B inhibition profile of the crude extract of E. glabra leaf resin. The analytical-scale HPLC profile recorded at 254 nm is shown at the top with isolated fractions/compounds marked by numbers. The corresponding high-resolution α-glucosidase (red) and PTP1B (green) inhibition profiles are shown below. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedApr 2022View details →
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Fig. 3 in Serrulatane diterpenoids from the leaves of Eremophila glabra and their potential as antihyperglycemic drug leads

Fig. 3. Key COSY (bold), HMBC (black, H to C), and ROESY (red) correlations used for structure elucidation of the previously unreported serrulatane-type diterpenoids isolated from E. glabra. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedApr 2022View details →
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Fig. 1 in Design, synthesis and screening of a drug discovery library based on an Eremophila-derived serrulatane scaffold

Fig. 1. Chemical structures of the targeted NP diterpenoid scaffolds (1–2), methylated products (3–4) and the amide library (5–16).

opennotspecifiedOct 2021View details →
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Fig. 4 in Design, synthesis and screening of a drug discovery library based on an Eremophila-derived serrulatane scaffold

Fig. 4. Representative flow cytometry examples of GFP expression (i.e., HIV production) in J-Lat 10.6 cells in the absence of stimulation (A), treatment with 50 nM PMA (B) and PMA plus 100 μM compound 2 (C). Dose response profiles (D) of compounds on GFP expression induced by 50 nM PMA in J-Lat 10.6 cells. Data denote mean ± s.d. from three independent experiments.

opennotspecifiedOct 2021View details →
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Fig. 3 in Design, synthesis and screening of a drug discovery library based on an Eremophila-derived serrulatane scaffold

Fig. 3. Microscopic images of the skinny (Skn) phenotype in L4s induced by compound 3 compared with the wild-type (WT) phenotype control (cultured in culture medium + 0.25% DMSO); the bottom panels enlarged from the dashed/ boxed areas in the upper panels.

opennotspecifiedOct 2021View details →
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FIGURE 1 in Description of an enigmatic new genus and new species of Australian Orthotylinae (Insecta: Heteroptera: Miridae) associated with the plant genus Eremophila

FIGURE 1. Dorsal habitus photographs of Warrumiris viridis. Scale Bar = 1mm.

opennotspecifiedJun 2018View details →
zenodo28/100

FIGURE 4 in Description of an enigmatic new genus and new species of Australian Orthotylinae (Insecta: Heteroptera: Miridae) associated with the plant genus Eremophila

FIGURE 4. Distribution map of Warrumiris viridis.

opennotspecifiedJun 2018View details →
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Fig. 2 in Design, synthesis and screening of a drug discovery library based on an Eremophila-derived serrulatane scaffold

Fig. 2. Key COSY, HMBC and ROESY correlations of analogue 5.

opennotspecifiedOct 2021View details →

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