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FIGURE 2 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 2. Principal coordinate analysis on 11 groups (the characters used are explained and described in Table 2): A, convolvulacea group; B, forrestii group with petiole <6 mm; C, forrestii group with petiole ≥ 6 mm; D, efilamentosa group; E, vinciflora group from NW Yunnan and SW Sichuan; F, vinciflora group from W & NW Sichuan; G, vinciflora group from SE Tibet; H, grey-wilsonii group; I, hirsuta group; J, graminifolia group, and K, the group possibly representing a new species.
FIGURE 4. The 50 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 4. The 50% majority rule consensus tree derived from the Bayesian analysis of combining four chloroplast DNA fragments. Ranges of parsimony jackknife support (JK) above 50 are reported with bootstrap value of likelihood, and Bayesian posterior probability values (MP/ML/BI) above branches. The putative new species from Muli is indicated by grey shadow.
FIGURE 1 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 1. Polymorphism of leaf shape and petiole length within a population of Codonopsis forrestii / Codonopsis efilamentosa (Kunming, Yunnan Prov., D. Y. Hong et al., H10012, PE, photographed by De-Yuan Hong). Scale bar = 1 cm.
FIGURE 2. A–H in The taxonomic revision of Asian Aristolochia (Aristolochiaceae) III: Two new taxa of Aristolochia and morphological revision for the flower character of A. obliqua from Yunnan, China
FIGURE 2. A–H: Aristolochia involuta. A. Habit, B. Leaf, C–D. Flower, E. Longitudinal-section of flower (showing inside structure), F. Anthers and gynostemium, G. Capsule, H. Seed. I–J: A. bambusifolia. I. Habit, J. Flower. (A–H: photographed by X.X.Zhu; I–J: photographed by Y.Liu.)
FIGURE 4. A–E in The taxonomic revision of Asian Aristolochia (Aristolochiaceae) III: Two new taxa of Aristolochia and morphological revision for the flower character of A. obliqua from Yunnan, China
FIGURE 4. A–E: Aristolochia hainanensis subsp. yingjiangensis. A. Leaf, B–C. Flower, D. Longitudinal-section of flower (showing inside structure), E. Capsule. F–J: A. hainanensis subsp. hainanensis. F. Leaf, G–H. Flower, I. Longitudinal-section of flower (showing inside structure), J. Capsule. K–O: A. kwangsiensis. K. Leaf, L–M. Flower, N. Longitudinal-section of flower (showing inside structure), O. Capsule. (A–I, K–O: photographed by X.X.Zhu; J: photographed by Y.Xiao.)
FIGURE 7. Aristolochia obliqua. A. Habit, B–C. Flower, D–E in The taxonomic revision of Asian Aristolochia (Aristolochiaceae) III: Two new taxa of Aristolochia and morphological revision for the flower character of A. obliqua from Yunnan, China
FIGURE 7. Aristolochia obliqua. A. Habit, B–C. Flower, D–E. The flower sketch. (A: photographed by Z.H.Wang; B–C: photographed by Y.Wang; D: quoted from Hwang 1981; E: quoted from Tao 1997.)
FIGURE 1. Aristolochia involuta. A. Branch, B. Inflorescence, C in The taxonomic revision of Asian Aristolochia (Aristolochiaceae) III: Two new taxa of Aristolochia and morphological revision for the flower character of A. obliqua from Yunnan, China
FIGURE 1. Aristolochia involuta. A. Branch, B. Inflorescence, C. Longitudinal-section of flower (showing inside structure), D. Flower in frontal view, E. Anthers and gynostemium, F. Capsule. (Drawn by H.X.Dong, A–E from X.X.Zhu ZXX17003, F from X.X.Zhu ZXX17063.)
FIGURE 6. A–B in The taxonomic revision of Asian Aristolochia (Aristolochiaceae) III: Two new taxa of Aristolochia and morphological revision for the flower character of A. obliqua from Yunnan, China
FIGURE 6. A–B: Aristolochia obliqua. A. Isotype (PEM-0001971), B. Enlarged photo of flower from the isotype (PEM-0001971). C–D: A. cucurbitoides. C. Type (IBK-00190363), D. Enlarged photo of flower from the type (IBK-00190363).
FIGURE 8 in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 8. Distribution of Oenothera royfraseri in Europe. Circles refer to the examined specimens, squares to localities cited in the literature. The question mark represents a stand given from France by Rostański (with no further details) (Rostański et al. 2010) which has not been traced.
FIGURE 9 in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 9. Comparison of the arrangement of sepal tips at the base of the four examined taxa: a – O. biennis, b – O. parviflora, c – O. royfraseri (the lectotype), d – O. turoviensis (the holotype).
FIGURE 5. A in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 5. A scatterplot resulting from principal component analysis (PCA). Empty triangles refer to O. biennis, empty circles to O. parviflora and empty squares to the individuals labelled as O. royfraseri and/or O. turoviensis (except the original material). The lectotype of O. royfraseri and the holotype and isotypes of O. turovienisis are marked with full circle and full triangles, respectively.
FIGURE 4. A in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 4. A chart presenting factor loadings of principal component analysis (PCA). For characters abbreviations see Table 1.
FIGURE 3 in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 3. Two-dimensional ordination diagram of correspondence analysis (CA) along CA1 and CA2, based on all qualitative characters. Empty triangles refer to O. biennis, empty circles to O. parviflora and empty squares to the individuals labelled as O. royfraseri and/or O. turoviensis (except the original material). The lectotype of O. royfraseri and the holotype and isotypes of O. turovienisis are marked with full circle and full triangles, respectively. The numbers indicate the number of specimens to which a particular point refers to (only if more than one). For characters abbreviations see Table 1.
FIGURE 7. Variability range for the chosen quantitative characters. Points indicate a median value, boxes represent 5 and 95 in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 7. Variability range for the chosen quantitative characters. Points indicate a median value, boxes represent 5 and 95 percentile, whiskers around the boxes refer to 1 and 99 percentile; B – O. biennis, P – O. perangusta, R – O. royfraseri (including the specimens labelled as O. turoviensis, except the original material of the latter), T – O. turoviensis (the original material only).
FIGURE 6. A in A revision of taxonomic relation between Oenothera royfraseri and O. turoviensis (sect. Oenothera, subsect. Oenothera; Onagraceae) based on multivariate analyses of morphological characters
FIGURE 6. A scatter diagram showing results of discriminant analysis (DA). Empty triangles refer to O. biennis, empty circles to O. parviflora and empty squares to the individuals labelled as O. royfraseri and/or O. turoviensis (except the original material). The lectotype of O. royfraseri and the holotype and isotypes of O. turovienisis are marked with full circle and full triangles, respectively.
Figure 2 in Discovery of a predaceous drosophilid Acletoxenus indicus Malloch in South China, with descriptions of the taxonomic, ecological and molecular characters (Diptera: Drosophilidae)
Figure 2. Acletoxenus indicus Malloch. (A) Adult; (B) larvae (green) preying upon spiralling whitefly on the underside of guava leaf; (C) coarctate pupae of spiralling whitefly; (D) puparium after eclosion. [This figure can be viewed in colour online.]
Figure 1 in Discovery of a predaceous drosophilid Acletoxenus indicus Malloch in South China, with descriptions of the taxonomic, ecological and molecular characters (Diptera: Drosophilidae)
Figure 1. Acletoxenus indicus Malloch, male. (A) Head; (B) wing; (C) epandrium (epan), cercus (cerc) and surstylus (sur) (lateral view); (D) hypandrium (hypd), paramere (pm), aedeagus (aed) and aedeagal apodeme (aed a) (lateral view). Scale bars: 0.1 mm.
FIGURE 1 in The histo structure of galls induced by aphids as a useful taxonomic character: the case of Rectinasus (Hemiptera, Aphididae, Eriosomatinae)
FIGURE 1. Galls induced by Rectinasus buxtoni. Microscopic structure. a Transverse section of the wall of the gall. Two vascular bundles are observed, one closer to the outside (Uvb) and the other closer to the inside of the gall (Lvb). Specifically, going from the outside (A) to the lumen (L) of the gall, the following is observed: epidermis-air (ea), storage parenchyma (pa), upper vascular bundle (Uvb), storage parenchyma, lower vascular bundle (Lvb), and epidermis-lumen (el). b–e Epidermis-air. b Uniseriate epidermis-air with thickened cuticle (c). Below storage parenchyma (pa) is observed, many cells of which have tannin inclusions. c View of the outer surface the gall. Between the epidermal cells a few stomata (s) are observed. d Detail of the foregoing. A stoma (s) and the presence of epicuticular waxes are observed in the epidermal cells. e Detail of the epicuticular waxes. f–i Vascular bundles. The vascular bundles are seen to be facing each other: the xylem of the upper bundle f–g is facing the xylem of the lower bundle h–i. f–g Upper vascular bundle. Xylem cells in f are the only ones that polarize light in g. h–i Lower vascular bundle. Xylem cells in h are the only ones that polarize light in i. The phloem is oriented towards the lumen (L) of the gall. j Detail of a vascular bundle: Closed collateral vascular bundle. Very characteristic of the vascular bundles of Pistacia sp. (and of the galls) is the presence of intraphloematic schizogenous ducts (sd). k–l Interior surface of the gall. k The interior surface of the gall has conspicuous dimples. l Detail of the foregoing. a b f h Safranin-Fast Green. Brightfield microscope. c d e k l SEM. g i Polarized light microscope. j Epifluorescence microscope. Abbreviations: A outside of the gall, c cuticle, ea epidermis-air, el epidermis-lumen, L lumen of the gall, Lvb lower vascular bundle, pa storage parenchyma, ph phloem, s stoma, sd intraphloematic schizogenous duct, Uvb upper vascular bundle, x xylem. Scale bars a 500 µm; b 50 µm; c f–k 100 µm; d l 20 µm; e 5 µm.
F in Taxonomic revision of Amerus troisi (Berlese, 1883) (Acari, Oribatida, Ameridae) using morphological and biochemical characters
F. 6. Cladogram based on UPGMA clustering of the genetic distance data showing genetic relationships between populations.
F in Taxonomic revision of Amerus troisi (Berlese, 1883) (Acari, Oribatida, Ameridae) using morphological and biochemical characters
F. 5. (a) Amerus cuspidatus n.sp.: rostral outline from dorsal (upper row) and lateral view (lower row) in some specimens of the typical population. (b, c) Morphological comparison of prodorsal setae in in A. troisi (Berlese, 1883) (b) and A. cuspidatus n. sp. (c).
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.