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163 results for “Central India”
FIGURES 8–14 in Description of Enterobius (Colobenterobius) emodensis sp. n. (Nematoda: Oxyuridae) collected from Central Himalayan langur, Semnopithecus schistaceus, in Uttarakhand, India
FIGURES 8–14. Female of Enterobius (Colobenterobius) emodensis sp. n. collected from Semnopithecus schistaceus in Chamoli, Uttarakhand, India. 8. Anterior portion of allotype, left lateral view. 9. Posterior portion of allotype, left lateral view. 10. Cephalic end, apical view. 11. Cephalic apex sectioned. 12. Lateral ala in cross section. 13. Ovejector, right lateral view. 14. Egg.
FIGURE 25 in Description of Enterobius (Colobenterobius) emodensis sp. n. (Nematoda: Oxyuridae) collected from Central Himalayan langur, Semnopithecus schistaceus, in Uttarakhand, India
FIGURE 25. Phylogenetic reconstruction of primate pinworms based on partial Cox1 amino acid sequences each with 199 positions using Maximum Likelihood method. Asterisks indicate captive individuals.
FIGURES 1–7 in Description of Enterobius (Colobenterobius) emodensis sp. n. (Nematoda: Oxyuridae) collected from Central Himalayan langur, Semnopithecus schistaceus, in Uttarakhand, India
FIGURES 1–7. Male of Enterobius (Colobenterobius) emodensis sp. n. collected from Semnopithecus schistaceus in Chamoli District, Uttarakhand, India. 1. Holotype, left lateral view. 2. Enlarged view of anterior portion of holotype, left lateral view. 3. Cephalic end, apical view. 4. Lateral ala in cross section. 5. Posterior portion of holotype, left lateral view. 6. Caudal end, ventral view. 7. Spicule.
FIGURE 24 in Description of Enterobius (Colobenterobius) emodensis sp. n. (Nematoda: Oxyuridae) collected from Central Himalayan langur, Semnopithecus schistaceus, in Uttarakhand, India
FIGURE 24. Phylogenetic reconstruction of primate pinworms based on partial Cox1 nucleotide sequences each with 599 positions using Neighbor-joining method. Asterisks indicate captive individuals.
FIGURE 7 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 7. SEM characteristics of Phyllactinia braunii (AMH 9672, holotype) a–e. Conida. f–g. Conidia with conidiophores. h. Chasmothecium. i. Fully developed chasmothecium with penicillate cells with several very short branches or filaments. Scale bars: a–g = 10 μm, h–i = 100 μm.
FIGURE 6 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 6. Drawings of Phyllactinia braunii (AMH 9672, holotype) a. Initial stage of developing chasmothecium (homogenious cells). b. Developing chasmothecium (differentiation of cells). c–d. Fully developed chasmothecium. e. Ruptured chasmothecium with ascus and ascospores. Scale bars: a–c = 50 μm, d–e = 25 μm.
FIGURE 2 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 2. Microphotographs of anamorph of Phyllactinia braunii (AMH 9672, holotype). a–f. Conidia. g. Germinating conidium. h–i. Conidiophores. Scale bars: a = 10 μm, b–i = 20 μm (red arrow for germinated conidium and green arrows for catenate conidia).
FIGURE 1 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 1. Symptoms on Cordia myxa a. Infected host plant. b. Early stage of infection showing powdery appearance. c–e. Late stage of infection with developed cleistothecia. Scale bars: b–d = 15 mm, e = 5 mm.
FIGURE 4 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 4. Microphotographs of mature chasmothecia of Phyllactinia braunii (AMH 9672, holotype). a. Heavily infected leaf with fully matured chasmothecia. b–d. Mature chasmothecia with several very short filaments of penicillate cells. Arrows show stems of penicillate cells divided at the apex into several very short filaments. Scale bars: a = 15 mm, b–d = 25 μm.
FIGURE 3 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 3. Microphotographs of Phyllactinia braunii (AMH 9672, holotype). a–b. Initial stage of developing chasmothecia (homogenious cells). c–f. Developing chasmothecia (differentiating cells). g. Fully developed chasmothecium. h–k. Appendages of chasmothecia. l–m Ruptured chasmothecia. n–p. Asci with ascospores. Scale bars: a–b = 20 μm, c–p = 25 μm.
FIGURE 5 in Phyllactinia braunii sp. nov. (Erysiphales) on Cordia myxa from Central India
FIGURE 5. Drawings of anamorph of Phyllactinia braunii (AMH 9672, holotype). Conidiophores with conidia. Scale bar: = 50 μm.
FIGURE 1 in Isoetes ×gopalkrishnae (Isoetaceae), a new interspecific sterile hybrid from central India
FIGURE 1. Isoetes ×gopalkrishnae. A–C. Plants growing in habitat. C. Location of plants (Image taken from www.googlemap.com). D–E. Sporangial wall showing long thread like and irregular shaped dark brown cells with internal pigments. F–G. Megasporangia under SEM and LM. H. Transvers section of leaf shows terete (rounded) in outline, interstellar canal 1 and 4 longitudinal transversally septate air chambers.
FIGURE 2 in Isoetes ×gopalkrishnae (Isoetaceae), a new interspecific sterile hybrid from central India
FIGURE 2. Scanning electron microphotographs of Isoetes ×gopalkrishnae. A–D, I. Larger megaspore. E–F. Smaller megaspore. G–H, J. Microspore. A, E. Distal view of megaspores showing coarsely rugulate surface ornamentation. B. Distal view of megaspore showing coarsely rugulate surface ornamentation with presence of smooth equatorial girdle. C, F. Proximal view of trilete megaspore showing rugulae with pustules. D. Proximal view of monolete megaspore showing coarse rugulae with pustules. G. Microspores with distal and proximal view showing densely echinate to short-cristate surface ornamentation. H. Proximal view. I. Infrastructural details of megaspore. J. Infrastructural details of the surface of microspore showing echinae rounded, simple or branched.
FIGURE 3 in Ramularia titarpaniensis-a new species of ramularioid complex from central India
FIGURE 3. Microphotographs of Ramularia titarpaniensis (holotype, AMH 9826). a–d. Conidia (arrows indicate catenation points). e, f. Germinating conidia. Scale bars a = 10 µm, b, c = 25 µm, d–f = 20 µm.
FIGURE 2 in Ramularia titarpaniensis-a new species of ramularioid complex from central India
FIGURE 2. Microphotographs of Ramularia titarpaniensis (holotype, AMH 9826). a–c. Conidiophores in fasicle with stromata. d. Developing conidia at conidiogenous loci. Scale bars a, c = 20 µm, b = 30 µm, d = 15 µm (arrows indicate developing conidia at conidiogenous loci).
FIGURE 1 in Ramularia titarpaniensis-a new species of ramularioid complex from central India
FIGURE 1. Ramularia titarpaniensis on Wendlandia sp. a, b. Infected host plant. c. Infection spots on upper surface. d. Infection spots on lower surface. Scale bars c–d = 10 mm.
FIGURE 4 in Ramularia titarpaniensis-a new species of ramularioid complex from central India
FIGURE 4. SEM of Ramularia titarpaniensis (holotype, AMH 9826). a. Catenation in conidia. b, c. Conidia. d. Top view of conidiogenous cell. e, f. Conidiogenous loci. g–i. Hila of conidia. Scale bars a = 10 µm, b = 5 µm, c = 3 µm, d = 2 µm, e–i = 1 µm.
FIGURE 2 in Capillipedium mistryi (Andropogoneae, Poaceae): a new remarkable species from central India
FIGURE 2. Illustration of the spikelets of Capillipedium mistryi. A. Portion of spiciform-raceme. B–J Sessile spikelet: B. Back of sessile spikelet. C. Lower glume (dorsal side). D. Lower glume (ventral). E. Upper glume (dorsal side). F. Upper glume (ventral). G. Lower lemma. H. Pistil. I. Anthers (two fertile and one aborted) of upper floret. J. Upper lemma with geniculate awn. K–Q Pedicelled spikelet: K. Pedicelled spikelet with pedicel (dorsal side). L. Pedicelled spikelet with pedicel (ventral side). M. Lower glume (dorsal side). N. Lower glume (ventral). O. Upper glume (dorsal side). P. Upper glume (ventral). Q. Lower lemma (ventral). R. Pedicel. S. Rhachis internode. T. Anthers. U. Ligule and leaf base. (Illustrated by: Shahid Nawaz).
FIGURE 8 in A new cryptic species of Nyctibatrachus (Amphibia, Anura, Nyctibatrachidae) with description of its tadpole from the central Western Ghats, India
FIGURE 8. Linear Discriminant Analysis (LDA) of seven species of Sanctipalustris clade based on the ratio of SVL to HW, HL, SL, EL, FLL, HAL, FL, TL and FOL of male individuals. Nyctibatrachus tunga sp. nov. forms a distinct cluster in the fourth quadrant of the graph. Loadings for Linear Discriminants of axes 1, 2 and 3 are given in Table 5.
FIGURE 10 in A new cryptic species of Nyctibatrachus (Amphibia, Anura, Nyctibatrachidae) with description of its tadpole from the central Western Ghats, India
FIGURE 10. Box plot of dominant frequency (Hz) in N. vrijeuni (SVL=42.5 mm) and Nyctibatrachus tunga sp. nov. (SVL=41.0 mm and 44.0 mm) call recordings. Temperature and relative humidity information are not available. a. Single note calls (t=7.71, p<0.0001), b. double note calls. calls (t=12.35, p<0.0001).
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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.