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159 results for “limestone mountain”
Data from: Mollusks from the upper Shackleton Limestone (Cambrian Series 2), Central Transantarctic Mountains, East Antarctica
An assemblage of Cambrian Series 2, Stages 3–4 conchiferan mollusks from the Shackleton Limestone, Transantarctic Mountains, East Antarctica is formally described and illustrated. The fauna includes one bivalve, one macromollusk and ten micromollusks, including the first description of the species Xinjispira simplex outside North China. The new fauna shows some similarity to previously described micromollusks from lower Cambrian glacial erratics from the Antarctic Peninsula. The fauna, mainly composed of steinkerns, is relatively low diversity, but the presence of diagnostic taxa, including helcionelloid Mackinnonia rostrata, bivalve Pojetaia runnegari, cambroclavid Cambroclavus absonus and bradoriid Spinospitella coronata as well as the botsfordiid brachiopod Schizopholis yorkensis in the overlying Holyoake Formation correlates the succession to the Dailyatia odyssei Zone (Cambrian Stage 3–4) in South Australia.
Fig. 6 in Cytotoxic and α-glucosidase inhibitory metabolites from twigs and leaves of Phyllanthus mirabilis, a species endemic to limestone mountains
Fig. 6. Hydrolysis reaction of phyllatyramine C (3) and 1H NMR spectra (in CD OD) of isolated phyllatyramine C (3), tyramine (5) and gallic acid (26), and hy3 drolysis products 5a and 26a.
Data from: Mollusks from the upper Shackleton Limestone (Cambrian Series 2), Central Transantarctic Mountains, East Antarctica
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Data from: Late Triassic (Julian) conodont biostratigraphy of a transition from reefal limestones to deep-water environments on the Cimmerian terranes (Taurus mountains, southern Turkey)
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Data from: Positive relationship between genetic- and species diversity on limestone outcrops in the Carpathian Mountains
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Fig. 117 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 117. Eocanites ruani (Bartzsch, Korn & Weyer, 2003) from the Oberrödinghausen railway cutting. A. Specimen GPIT-PV-64001 (Vöhringer Coll.) from bed 5. B. Specimen MB.C.31229 (Weyer 1993– 1994 Coll.) from bed 5a1. C. Reproduction of the figure of "Gattendorfia nodosa" of Schmidt (1925: pl. 23 fig. 3). Scale bar units = 1 mm.
Fig. 123 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 123. Eocanites from the Oberrödinghausen railway cutting, all Vöhringer Coll. A. Eocanites tener (Vöhringer, 1960), holotype GPIT-PV-64006 from bed 3c B. Eocanites spiratissimus (Schindewolf, 1926), neotype GPIT-PV-64007 from bed 3c. C. Eocanites spiratissimus (Schindewolf, 1926), cross section of specimen GPIT-PV-64012 from bed 3c. D–F. Eocanites spiratissimus (Schindewolf, 1926), ontogenetic development of the conch width index (ww/dm), umbilical width index (uw/dm), whorl width index (ww/wh) and whorl expansion rate (WER) of selected specimens. Scale bar units = 1 mm.
Fig. 104 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 104. Paprothites dorsoplanus (Schmidt, 1924) from the Oberrödinghausen railway cutting, all Weyer 1993–1994 Coll. A. Specimen MB.C.31201.1 from bed 3d1b. B. Specimen MB.C.31201.2 from bed 3d1b. C. Specimen MB.C.31201.3 from bed 3d1b. D. Specimen MB.C.31201.4 from bed 3d1. E. Specimen MB.C.31201.5 from bed 3d1. F. Specimen MB.C.31201.6 from bed 3d1. G. Specimen MB.C.31201.7 from bed 3d1. H. Specimen MB.C.31199.1 from bed 3d1. I. Specimen MB.C.31199.2 from bed 3d1. J. Specimen MB.C.31199.3 from bed 3d1. K. Specimen MB.C.31199.4 from bed 3d1. L. Specimen MB.C.31199.5 from bed 3d1. Scale bar units = 1 mm.
Fig. 103 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 103. Paprothites dorsoplanus (Schmidt, 1924) from the Oberrödinghausen railway cutting. A. Holotype BGRB X5715 (Schmidt Coll.) from an unknown bed. B. Specimen GPIT-PV-63967 (Vöhringer Coll.) from bed 3d. C. Specimen GPIT-PV-63969 (Vöhringer Coll.) from bed 3d. Scale bar units = 1 mm.
Fig. 105 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 105. Paprothites dorsoplanus (Schmidt, 1924) from the Oberrödinghausen railway cutting. A. Cross section of specimen GPIT-PV-63971 (Vöhringer Coll.) from bed 3d. B. Growth line course of specimen GPIT-PV-63967 (Vöhringer Coll.) from bed 3d, at ww = 6.4 mm, wh = 5.2 mm. C–E. Ontogenetic development of the conch width index (ww/dm), umbilical width index (uw/dm), whorl width index (ww/wh) and whorl expansion rate (WER) of selected specimens. Scale bar units = 1 mm.
Fig. 101 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 101. Hasselbachia erronea sp. nov., holotype, MB.C.31198 (Weyer 1993–1994 Coll.) from the Oberrödinghausen railway cutting, bed 3e. Scale bar units = 1 mm.
Fig. 100 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 100. Hasselbachia gracilis (Vöhringer, 1960) from the Oberrödinghausen railway cutting. Scale bar units = 1 mm. A. Holotype GPIT-PV-63917 (Vöhringer Coll.) from bed 3d. B. Growth line course of holotype GPIT-PV-63917, at dm = 16.6 mm, ww ca. 9.0 mm, wh = 8.3 mm. Scale bar units = 1 mm.
Fig. 99 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 99. Hasselbachia multisulcata (Vöhringer, 1960) from the Oberrödinghausen railway cutting (A-C, F, G) and the Hasselbachtal section (D, E; after Korn & Weyer 2003). A. Cross section of paratype GPIT-PV-63938 (Vöhringer Coll.) from bed 3e. B. Cross section of paratype GPIT-PV-63949 (Vöhringer Coll.) from bed 3d. C. Cross section of paratype GPIT-PV-64017 (Vöhringer Coll.) from bed 3e. D. Cross section of specimen MB.C.5240.2 (Weyer 1993–1994 Coll.) from bed 57. E. Cross section of specimen MB.C.5240.3 (Weyer 1993–1994 Coll.) from bed 57. F. Suture line of paratype GPIT-PV-64017 (Vöhringer Coll.) from bed 3e, at dm = 8.8 mm, ww = 7.7 mm, wh = 4.3 mm. G. Growth line course of holotype GPIT-PV-63911 (Vöhringer Coll.) from bed 3e, at 13.2 mm dm, 10.0 mm ww, 7.0 mm wh. H–J. Ontogenetic development of the conch width index (ww/dm), umbilical width index (uw/dm), whorl width index (ww/wh) and whorl expansion rate (WER) of selected specimens (holotype of Hasselbachia gracilis as grey dots). Scale bar units = 1 mm.
Fig. 98 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 98. Hasselbachia from the Oberrödinghausen railway cutting, all Weyer 1993–1994 Coll. A. Hasselbachia multisulcata (Vöhringer, 1960), specimen MB.C.31195.1 from bed 3e. B. Hasselbachia multisulcata (Vöhringer, 1960), specimen MB.C.31195.2 from bed 3e. C. Hasselbachia multisulcata (Vöhringer, 1960), specimen MB.C.31194.1 from bed 3d2. D. Hasselbachia multisulcata (Vöhringer, 1960), specimen MB.C.31195.3 from bed 3e. E. Hasselbachia gracilis (Vöhringer, 1960), specimen MB.C.31196.1 from bed 3d1b. Scale bar units = 1 mm.
Fig. 93 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 93. Weyerella molaris (Vöhringer, 1960) from the Oberrödinghausen railway cutting. A. Cross section of specimen BGR X4643 (Schmidt 1921 Coll.). B. Cross section of paratype GPIT-PV-63961 (Vöhringer Coll.) from bed 2. C. Cross section of specimen MB.C.31179.1 (Vöhringer Coll.) from bed 2. D. Cross section of specimen MB.C.31181.1 (Vöhringer Coll.) from bed 3c. E. Cross section of specimen MB.C.31182.1 (Vöhringer Coll.) from bed 3d. F. Cross section of specimen MB.C.31181.2 (Vöhringer Coll.) from bed 3c. G. Cross section of specimen MB.C.31179.2 (Vöhringer Coll.) from bed 2. H. Suture line of paratype GPIT-PV-63961 (Vöhringer Coll.) from bed 2, at ww = 7.4 mm, wh = 7.4 mm. I. Growth line course of holotype GPIT-PV-63930 (Vöhringer Coll.) from bed 3c, at ww = 7.0 mm, wh = 7.6 mm. J. Internal shell thickening course of paratype GPIT-PV-63960 (Vöhringer Coll.) from bed 2, at wh = 8.2 mm. K–M. Ontogenetic development of the conch width index (ww/ dm), umbilical width index (uw/dm), whorl width index (ww/wh) and whorl expansion rate (WER) of selected specimens. Scale bar units = 1 mm.
Fig. 90 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 90. Gattenpleura concava (Vöhringer, 1960) from the Oberrödinghausen railway cutting. A. Cross section of paratype GPIT-PV-63920 from bed 2. B. Suture line of paratype GPIT-PV-63920 from bed 2, at dm = 14.5 mm, ww = 7.5 mm, wh = 6.6 mm. C –E. Ontogenetic development of the conch width index (ww/dm), umbilical width index (uw/dm), whorl width index (ww/wh) and whorl expansion rate (WER). Scale bar units = 1 mm.
Fig. 89 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 89. Gattenpleura concava (Vöhringer, 1960), holotype GPIT-PV-63926 Vöhringer Coll.) from the Oberrödinghausen railway cutting, bed 4. Scale bar units = 1 mm.
Fig. 79 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 79. Gattendorfia immodica sp. nov. from the Oberrödinghausen railway cutting; photographs and dorsal view reconstruction of holotype MB.C.31165 (Weyer 1993–1994 Coll.) from bed 5a2. Scale bar units = 1 mm.
Fig. 86 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 86. Zadelsdorfia oblita sp. nov. from the Oberrödinghausen railway cutting; photographs and dorsal view reconstruction of holotype MB.C.31174.1 (Vöhringer Coll.) from bed 1. Scale bar units = 1 mm.
Fig. 65 in The ammonoids from the Gattendorfia Limestone of Oberrödinghausen (Early Carboniferous; Rhenish Mountains, Germany)
Fig. 65. Imitoceras initium sp. nov., holotype MB.C.31144 (Korn 1977 Coll.) from the forestry road cutting west of the Oberrödinghausen railway cutting. A. Lateral and dorsal view. B. Suture line, at ww = 14.0 mm, wh = 15.4 mm. Scale bar units = 1 mm.
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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.