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FIGURE 2. Approximate distribution maps for species from 11 in Systematics of the blindsnakes (Serpentes: Scolecophidia: Typhlopoidea) based on molecular and morphological evidence
FIGURE 2. Approximate distribution maps for species from 11 of 19 typhlopoid genera; Amerotyphlops, Xenotyphlopidae (Xenotyphlops), Gerrhopilidae (Gerrhopilus), Typhlops, Rhinotyphlops, Anilios, Xerotyphlops, Indotyphlops, Madatyphlops, Argyrophis, and Malayotyphlops. Seven other genera are pictured in Figure 4. Note that I. braminus has an essentially cosmopolitan distribution, and is not factored into the range for Indotyphlops (see Wallach 2009 for a recent summary of known localities).
FIGURE 1. Results from a in Systematics of the blindsnakes (Serpentes: Scolecophidia: Typhlopoidea) based on molecular and morphological evidence
FIGURE 1. Results from a molecular phylogenetic analysis of 95 of the 275 known, extant species of typhlopoid blindsnakes. Tree represents the ML estimate from a concatenated matrix of 4 mitochondrial and 6 nuclear genes (6290bp total), inferred using 200 independent searches in RAxMLv7.2.8, with support estimated from 1000 non-parametric BS replicates (>50% shown).
FIGURE 3. Approximate distribution maps for species from 7 in Systematics of the blindsnakes (Serpentes: Scolecophidia: Typhlopoidea) based on molecular and morphological evidence
FIGURE 3. Approximate distribution maps for species from 7 of 19 typhlopoid genera: Grypotyphlops, Letheobia, Lemuriatyphlops, Cyclotyphlops, Acutotyphlops, Afrotyphlops, and Ramphotyphlops.
FIGURE 12 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 12. Specimens of Thalictrum angustialatum (previously misidentified as T. leuconotum). A. China, Sichuan, Muli, Muli Exped. 52 (SM704604658); inset: flower. B. China, Sichuan, Muli, T.T. Yu 5706 (KUN0689917); inset: flower. C. China, Sichuan, Puge, Sichuan Med. Plant Exped. 25061 (SM704604653); inset: aggregate fruit. D. China, Sichuan, Xide, Anonymous 295 (SM704604657); inset: aggregate fruit.
FIGURE 11 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 11. Specimens of Thalictrum angustialatum (previously misidentified as T. uncatum). A. China, Sichuan, Meigu, Anonymous 13088 (PE01040627); inset: aggregate fruit. B. China, Sichuan, Meigu, Anonymous 13126 (PE00427839); inset: aggregate fruit. C. China, Sichuan, Zhaojue, Anonymous 12823 (CDBI0026391); inset: aggregate fruit. D. China, Sichuan, Zhaojue, Anonymous 12823 (PE00427838); inset: aggregate fruit.
FIGURE 10. A specimen numbered Bijie Exped. 125 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 10. A specimen numbered Bijie Exped. 125 (PE00471121) and agreeing with other sheets of Bijie Exped. 125 in the collection records, but actually belonging to Thalictrum lecoyeri and not cited in the protologue of T. angustialatum, and thus not an isotype of T. angustialatum.
FIGURE 9 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 9. Mitotic metaphase chromosomes of Thalictrum angustialatum (A) (2n = 28), T. leuconotum (B, C) (2n = 14), T. sinomacrostigma (D) (2n = 28), and T. uncatum (E‒I) (2n = 14), all same scale. A. China, Yunnan, Qiaojia, Y.P. Zeng & Q.L. Huang 315 (IBSC). B. China, Sichuan, Wenchuan, Y.P. Zeng & Q.L. Huang 344 (IBSC). C. China, Xizang, Yadong, L. Wang et al. 2952 (IBSC). D. China, Sichuan, Kangding, Y.P. Zeng & Q.L. Huang 373 (IBSC). E. China, Sichuan, Litang, Y.P. Zeng & Q.L. Huang 403 (IBSC). F. China, Xizang, Bomi, W.Q. Fei 57 (IBSC). G. China, Xizang, Qamdo, L. Wang et al. 3410 (IBSC). H. China, Xizang, Nangxian, L. Wang et al. 3210 (IBSC). I. China, Xizang, Riwoqe, L. Wang et al. 3452 (IBSC).
FIGURE 8 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 8. Distribution of Thalictrum angustialatum (■) and T. uncatum (●). Arrow indicates the type locality of T. angustialatum, i.e. Weining in Guizhou, China.
FIGURE 7 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 7. Sepals (A, E), stamens (B, F), carpels (C, G), and achenes (D, H) in Thalictrum angustialatum (A‒D) and T. uncatum (E‒H).
FIGURE 5 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 5. Thalictrum sinomacrostigma in the wild (Kangding in Sichuan, China). A. Habitat. B. Habit (plant in flowering). C. Habit (plant in fruiting). D. Roots. E. Portion of stem. F. Leaf (left: adaxial side; right: abaxial side; inset: stipels). G. Leaflet (left: adaxial side; right: abaxial side). H. Flower. I. Sepal (left: abaxial side; right: adaxial side). J. Stamens. K. Carpels. L. Aggregate fruit. M. Achenes (immature). Photographed by Y.P. Zeng.
FIGURE 6 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 6. Thalictrum uncatum in the wild (Kangding in Sichuan, China). A. Habitat. B. Habit (plant in flowering). C. Habit (plant in fruiting). D. Roots. E. Portion of stem. F. Leaf (left: adaxial side; right: abaxial side; inset: stipels). G. Leaflet (left: adaxial side; right: abaxial side). H. Flower. I. Sepal (left: abaxial side; right: adaxial side). J. Stamens. K. Carpels. L. Aggregate fruit. M. Achenes (immature). Photographed by Y.P. Zeng.
FIGURE 4 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 4. Thalictrum leuconotum in the wild (A, B, D‒K: Wenchuan in Sichuan, China; C, L, M: Yadong in Xizang, China). A. Habitat. B. Habit (plant in flowering). C. Habit (plant in fruiting). D. Roots. E. Portion of stem. F. Leaf (left: adaxial side; right: abaxial side; inset: stipels). G. Leaflet (left: adaxial side; right: abaxial side). H. Flower. I. Sepal (left: abaxial side; right: adaxial side). J. Stamens. K. Carpels. L. Aggregate fruit. M. Achenes (immature). Photographed by Y.P. Zeng.
FIGURE 3 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 3. Specimens of Thalictrum angustialatum. A‒D: China, Yunnan, Qiaojia, Y.P. Zeng & Q.L. Huang 315 (IBSC).
FIGURE 2 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 2. Thalictrum angustialatum in the wild (Qiaojia in Yunnan, China). A. Habitat. B. Habit (plant in flowering). C. Habit (plant in fruiting). D. Roots. E. Portion of stem. F. Leaf (left: adaxial side; right: abaxial side; inset: stipels). G. Leaflet (left: adaxial side; right: abaxial side). H. Flower. I. Sepal (left: abaxial side; right: adaxial side). J. Stamens. K. Carpels. L. Aggregate fruit. M. Achenes (immature). Photographed by Y.P. Zeng.
FIGURE. Strobilanthes glandulata. A in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Strobilanthes glandulata. A. Corolla split open showing the stamens; B. Inflorescence; C. Leaf; D. Flowering branch; E. Close up of the leaf surfaces.
FIGURE. Strobilanthes glandulata. A in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Strobilanthes glandulata. A. Habit; B. Flowering branch; C. Inflorescence; D & F. Leaves adaxial and abaxial view; E. front view of corolla; G. Internode; H. Bracts.
FIGURE. DnaSP DNA polymorphism analysis - Nucleotide variability (Pi) comparison between Strobilanthes lupulina and S. glandulata. The window length and step size were set to 600bp and 200bp respectively. The most varying regions and the commonly used barcoding regions are listed against the base-pair differences found. in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. DnaSP DNA polymorphism analysis - Nucleotide variability (Pi) comparison between Strobilanthes lupulina and S. glandulata. The window length and step size were set to 600bp and 200bp respectively. The most varying regions and the commonly used barcoding regions are listed against the base-pair differences found.
FIGURE. Strobilanthes lupulina. A in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Strobilanthes lupulina. A. Flowering branch; B–C Inflorescence; D. Leaves adaxial and abaxial view; E. Bracts; F. Corolla split open showing the stamens; G. front view of corolla; H. Close up of the leaf surface; I. Stamens; J. Internode; K. Capsule.
FIGURE. Strobilanthes lupulina. A in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Strobilanthes lupulina. A. Capsule; B. Calyx; C. Bracts; D. Corolla split open showing the stamens; E. Inflorescences; F. Flowering branch; G. Close up of the leaf surfaces; H. Leaf.
FIGURE. Pollen morphology of S. glandulata and S. lupulina observed under SEM. A–C. Strobilanthes lupulina. A: Equatorial view, B, C: Exine ornamentation. D–F. Strobilanthes glandulata. D: Equatorial view, E, F: Exine ornamentation. in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Pollen morphology of S. glandulata and S. lupulina observed under SEM. A–C. Strobilanthes lupulina. A: Equatorial view, B, C: Exine ornamentation. D–F. Strobilanthes glandulata. D: Equatorial view, E, F: Exine ornamentation.
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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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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
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.