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15 results for “Hypnale”
Image 2 in Habitat suitability, threats and conservation strategies of Hump-nosed Pit Viper Hypnale hypnale Merrem (Reptilia: Viperidae) found in Western Ghats, Goa, India
Image 2. Gravid female killed in cashew plantation during weed clearance
Figure 1 in Habitat suitability, threats and conservation strategies of Hump-nosed Pit Viper Hypnale hypnale Merrem (Reptilia: Viperidae) found in Western Ghats, Goa, India
Figure 1. Distribution of Hypnale hypnale in the study sites and cashew plantations.
Image 1 in Habitat suitability, threats and conservation strategies of Hump-nosed Pit Viper Hypnale hypnale Merrem (Reptilia: Viperidae) found in Western Ghats, Goa, India
Image 1. Hypnale hypnale in natural habitat
Supplementary material 3 from: {"en": "Mustapeng AMA, Suleiman M (2020) New and noteworthy Hypnales (Bryophyta) records from the Nuluhon Trusmadi Forest Reserve in Borneo. Check List 16(6): 1663-1671. https://doi.org/10.15560/16.6.1663"}
Supplementary material 3 from: {"en": "Mustapeng AMA, Suleiman M (2020) New and noteworthy Hypnales (Bryophyta) records from the Nuluhon Trusmadi Forest Reserve in Borneo. Check List 16(6): 1663-1671. https://doi.org/10.15560/16.6.1663"}
FIGURE 6 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 6. Hypnale zara: WHT 2198, male, 338.0 mm SVL: a,b, c, lateral, dorsal and ventral aspects, respectively, of head; d, e, everted left hemipenis, showing (f) enlarged view of a hemipenial lobe of WHT 5848, 288.0 mm SVL; g, dorsal view of paravertebral scale of WHT 2198; h, medial view of right palatine of WHT 6089, male, 297.0 mm SVL; and i, distribution in Sri Lanka. Scale bars = 1 mm.
FIGURE 4. Hypnale nepa, WHT 6515 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 4. Hypnale nepa, WHT 6515, neotype, male, 367.0 mm SVL: a, b, c, lateral, dorsal and ventral aspects, respectively, of head; d, e, everted left hemipenis, showing (f) enlarged view of a hemipenial lobe; g, dorsal view of paravertebral scale; h, medial view of right palatine of WHT 6082, male, 292.0 mm SVL; and i, distribution in Sri Lanka: H. nepa (solid circles), H. walli type locality (open circle).
FIGURE 3 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 3. Hypnale hypnale: a, dosal aspect of neotype, BNHS 2531-759, female, 350.0 mm SVL; b, dorso-lateral aspect of a specimen from Galle, Sri Lanka (not preserved); c, reproduction of drawing of H. hypnale in Russell (1801).
FIGURE 2. Hypnale hypnale, a in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 2. Hypnale hypnale, a, distribution in India; b, distribution in Sri Lanka; based on material examined in present study.
FIGURE 7 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 7. Hypnale zara: a, dorsal aspect of holotype, BMNH 1946.1.19.96, male, 303.0 mm SVL; b, lateral aspect of WHT 2198, male, 338 mm SVL; c, specimen from Kottawa, Galle, Sri Lanka, not preserved.
FIGURE 1. Hypnale hypnale,WHT 5852 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 1. Hypnale hypnale,WHT 5852, male, 311.0 mm SVL: a, b, c, lateral, dorsal and ventral aspects, respectively, of head; d, e, everted left hemipenis, showing (f) enlarged view of a hemipenial lobe; g, dorsal view of paravertebral scale; h, medial view of right palatine of WHT 5857, male, 343.0 mm SVL.
FIGURE 5 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 5. Hypnale nepa: a, iconotype, male, reproduced from Seba (1734); b, WHT 6515, neotype, male, 367.0 mm SVL, Agra Arboretum, Agrapatana, Sri Lanka; c, topotypical specimen showing different coloration, not preserved.
FIGURE 9 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 9. Hypnale sp. 'amal': a, WHT 7140, male, 325.0 mm SVL; b, collection locality: a home garden at Wataraka, Galle, Sri Lanka.
FIGURE 8 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 8. Hypnale sp. 'amal', WHT 7140, male, 325.0 mm SVL: a, b,c, lateral, dorsal and ventral aspects respectively of head; d, dorsal view of paravertebral scale; e, medial view of right palatine; and f, distribution in Sri Lanka.
Data from: A phylotranscriptomic analysis of gene family expansion and evolution in the largest order of pleurocarpous mosses (Hypnales, Bryophyta)
The pleurocarpous mosses (i.e., Hypnanae) are a species-rich group of land plants comprising about 6,000 species that share the development of female sex organs on short lateral branches, a derived trait within mosses. Many of the families within Hypnales, the largest order of pleurocarpous mosses, trace their origin to a rapid radiation less than 100 million years ago, just after the rise of the angiosperms. As a result, the phylogenetic resolution among families of Hypnales, necessary to test evolutionary hypotheses, has proven difficult using one or few loci. We present the first phylogenetic inference from high-throughput sequence data (transcriptome sequences) for pleurocarpous mosses. To test hypotheses of gene family evolution, we built a species tree of 21 pleurocarpous and six acrocarpous mosses using over one million sites from 659 orthologous genes. We used the species tree to investigate the genomic consequences of the shift to pleurocarpy and to identify whether patterns common to other plant radiations (gene family expansion, whole genome duplication, or changes in the molecular signatures of selection) could be observed. We found that roughly six percent of all gene families have expanded in the pleurocarpous mosses, relative to acrocarpous mosses. These gene families are enriched for several gene ontology (GO) terms, including interaction with other organisms. The increase in copy number coincident with the radiation of Hypnales suggests that a process such as whole genome duplication or a burst of small-scale duplications occurred during the diversification. In over 500 gene families we found evidence of a reduction in purifying selection. These gene families are enriched for several terms in the GO hierarchy related to "tRNA metabolic process." Our results reveal candidate genes and pathways that may be associated with the transition to pleurocarpy, illustrating the utility of phylotranscriptomics for the study of molecular evolution in non-model species.
Data from: A phylotranscriptomic analysis of gene family expansion and evolution in the largest order of pleurocarpous mosses (Hypnales, Bryophyta)
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