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FIGURE 10. Bats. 1 in Late Holocene land vertebrate fauna from Cueva de los Nesofontes, Western Cuba: Stratigraphy, chronology, diversity, and paleoecology
FIGURE 10. Bats. 1, left hemimandible of Artibeus anthonyi (no, 1663, lower Level III). 2, ventral view of Phyllops vetus incomplete skull (no. 37, Level II). Both specimens were radiocarbon-dated (14C). 3, four hemimandibles of Antrozous koopmani (no. 20, 75, 1429, 1430 from Levels II and IV, also 14C dated). These specimens were also dated, helping corroborate the chronology discussed. The scale bar equals 10 mm.
FIGURE 7 in Late Holocene land vertebrate fauna from Cueva de los Nesofontes, Western Cuba: Stratigraphy, chronology, diversity, and paleoecology
FIGURE 7. Nesophontes skulls on ventral view. 1-3, Nesophontes cf. longirostris, 3 is the holotype (AMNH 17626). 4-5, Nesophontes major. Small lines indicate discrete characters discussed in the text.
FIGURE 14 in Late Holocene land vertebrate fauna from Cueva de los Nesofontes, Western Cuba: Stratigraphy, chronology, diversity, and paleoecology
FIGURE 14. Carbon stable isotopes signals from Nesophontes (filled square) and Artibeus spp. (open and closed circles), analyzed from bone collagen) at shown intervals.
Fig. 8 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 8. Lateral CD ambulacral view of holotype PIL 14656−H of Rhenopyrgus piojoensis sp. nov., Silurian (lower Ludlow), Los Espejos Formation, Argentina, showing the notch in the collar plates and the small irregular plates leading to the perirpoctal area. Note that floor plates are exposed in the distal ambulacra and the anal pyramid lies along the edge of the integrated interradial plate at the top of the periproctal notch.
Fig. 5 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 5. Comparison of Ludlow conodont zones between Europe, North America, Asia, and the Precordillera.
Fig. 4 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 4. Scanning electron micrographs of conodont elements documenting the Silurian (lower Ludlow) age of the Los Espejos Formation. All figured elements were collected from the Los Espejos Formation of the Precordillera. A, D. Kockelella variabilis variabilis Walliser, 1957. A. P element, upper view, sample 7, CML−C 3067 (1). D. S element, posterior view, sample 3, CML−C 3058 (2). B, H. Ozarkodina excavata excavata (Branson and Mehl, 1933). B. Pb element, lateral view, sample 3, CML−C 3057 (6). H. S element, lateral view, sample3, CML−C 3057 (7). C. Corysognathus dubius (Rhodes, 1953); Pb element, posterior lateral view, sample 3, CML−C 3055 (4). E. Oulodus siluricus (Branson and Mehl, 1933); Pb element, lateral view, sample 3, CML−C 3052 (4). F. Pseudooneotodus beckmanni (Bischoff and Sannemann, 1958); lateral view, samples 3, CML−C 3054 (5). G. Ozarkodina confluens (Branson and Mehl, 1933); Pb element, lateral view, sample 3, CML−C 3071 (1). Scale bars 0.1 mm.
Fig. 2 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 2. Trees showing the phylogenetic position of rhenopyrgids with respect to other edrioasteroid clades. A. Strict consensus of the two, equally most parsimonious trees of 18 evolutionary steps. Numbers at nodes are the bootstrap and decay index for these nodes. B. Single most parsimonious tree of 26 steps recovered when the search was constrained to retain only those trees that placed Rhenopyrgus Dehm, 1961 as sister taxon to the pyrgocystid Argodiscus Prokop, 1965. Note that except for the placement of Rhenopyrgus, the trees are congruent.
Fig. 1 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 1. Rhenopyrgids and Pyrgocystis showing the superficial similarity in the construction of the theca. A. Paratype NHM−E−16237 of Rhenopyrgus? ansticei (Bather, 1915) in lateral view; Wenlock Shale, Silurian, UK. B. Holotype NHM−E−16232 of Pyrgocystis sardesoni Bather, 1915; Decorah Shale (Ordovician) Minnesota, USA. Oral view showing the oral surface covered with small spines (B1) and lateral view showing the extensive, disorganized pedunculate zone (B2). C. NHM−E−62753 Rhenopyrgus? procera (Aurivillius, 1892); Silurian, UK. Part (C1) and counterpart (C2) showing the well−developed pedunculate of this complete specimen. Note that the oral surface is extremely poorly preserved. D. Holotype NHM−E−23470 of Pyrgocystis grayae (Bather, 1915); Drummuck Series, Ordovician, Scotland. Lateral summit detail (D1), lateral A ambulacral (D2) and summit (D3) views. E, F, G. Rhenopyrgus whitei Holloway and Jell, 1983, Humevale Formation, Silurian, Australia. E. Lateral view of distal pedunculate zone of paratype NMV P−67681. F. Lateral summit view of holotype NMV P−67680a. G. Lateral view of paratype NMV P−67682 showing both proximal and distal portions of the theca. Scale bars 2.5 mm.
Fig. 7 in The first report of South American edrioasteroids and the paleoecology and ontogeny of rhenopyrgid echinoderms
Fig. 7. Size and orientation of rhenopyrgids. A. Rose diagram showing the orientation of theca on slab surface. Vector is measured as the angle between a randomly assigned "north" arrow and the projection of the oral surface of the extended theca. B. Width of the proximal portion of the pedunculate zone. Note the normal distribution of thecal size.
Fig. 12. Elliptical reticulofenestrids from the Central Paratethys Oligocene and Early Miocene. A–K. Reticulofenestra minuta Roth, 1970 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 12. Elliptical reticulofenestrids from the Central Paratethys Oligocene and Early Miocene. A–K. Reticulofenestra minuta Roth, 1970, <3.5 µm, zones NN1 and NN2. A. Borehole LR−10/12 m, Zone NN2. B–D. Borehole LR−2/48 m, Zone NN1. E, F. Borehole LR−2/28 m, Zone NN2. G. Borehole FV−1/440 m, Zone NN1. H. Borehole EH−1/155 m, Zone NN2. I, J. Borehole EH−1/85 m, Zone NN2. K. Borehole EH−2/155 m, Zone NN2. L–W. Reticulofenestra minuta Roth, 1970, <3.5 µm, Zone NN5. L–N. Section Kralice, sample 4. O, P Section Kralice, sample 7. Q, R. Section Kralice, sample 10. S–U. Borehole PY−1/2.2 m. V, W. Borehole PY−1/1.5 m. X–AY. – group (4–5 µm), zones NP25–NN4. X, Y. Borehole LR−10/350 m, Zone NP25. Ą
Fig. 10 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 10. Two morphotypes of Reticulofenestra haqii–pseudoumbilicus group in the lower part of the Zone NN2. Interval FO Helicosphaera scissura/ FO Discoaster druggii–FO Helicosphaera ampliaperta lower Zone NN2 (22.8–20.0 Ma); n = 243 (samples LR2/28, C2/10, FV1/240, FV1/40, EH2/ 155, EH1/85, EH1/105).
Fig. 5 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 5. Variability of the placolith size for the individual assemblages, Egerian to Eggenburgian. Vertical axis, number of specimens; horizontal axis, placolith size (in µm). Location of the boreholes LR10, LR9, LR2, C2, FV1, EH1, EH2, and section Lipovany (LIP) is illustrated on Fig. 1, their lithology and sampled intervals on Fig. 2. Abbreviation: LO, last occurrence.
Fig. 6 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 6. Variability of the placolith size for the individual assemblages, Ottnangian to Early Badenian. Vertical axis, number of specimens; horizontal axis, placolith size (in µm). Location of the boreholes D19, LKŠ1, BE2, PY1, and sections Lipovany (LIP) and Kralice (KRAS) is illustrated on Fig. 1, their lithology and sampled intervals on Fig. 2.
Fig. 2 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 2. Lithology, stratigraphical ranges, and sampled interval of studied sections. Location of boreholes LR−10, LR−9, LR−2, C−2, FV−1, EH−1, EH−2, D−19, LKŠ−1, BE−2,PY−1, and sections Lipovany and Kralice II is illustrated on Fig. 1.
Fig. 4 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 4. Scatter plots and frequency histograms visualizing correlations between biometric characteristics of the placoliths. A. Length/width−ratio of placoliths. B. Length/width−ratio of central opening. C. Length of placolith/length of central opening.
Fig. 8 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 8. Variability of the central opening size for the individual assemblages, Ottnangian to Early Badenian. Vertical axis, number of specimens; horizontal axis, central opening size (in µm). Location of the boreholes D19, LKŠ1, BE2, PY1, and sections Lipovany (LIP) and Kralice (KRAS) is illustrated on Fig. 1, their lithology and sampled intervals on Fig. 2.
Fig. 7 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 7. Variability of the central opening size for the individual assemblages, Egerian to Eggenburgian. Vertical axis, number of specimens; horizontal axis, central opening size (in µm). Location of the boreholes LR10, LR9, LR2, C2, FV1, EH1, EH2, and section Lipovany (LIP) is illustrated on Fig. 1, their lithology and sampled intervals on Fig. 2. Abbreviation: LO, last occurrence.
Fig. 3 in Morphological variability of the Paratethyan Oligocene-Miocene small reticulofenestrid coccolites and its paleoecological and paleogeographical implications
Fig. 3. Dimensions measured in placoliths. Abbreviations: lo, length of central opening; lp, length of placoliths; wo, width of central opening; wp, width of placoliths.
Fig. 7 in Biotic interaction between spionid polychaetes and bouchardiid brachiopods: Paleoecological, taphonomic and evolutionary implications
Fig. 7. Fragments of Bouchardia rosea (Mawe, 1823) shells resulting from the breakage along the surface defined by polychaete tubes.
Fig. 2 in Biotic interaction between spionid polychaetes and bouchardiid brachiopods: Paleoecological, taphonomic and evolutionary implications
Fig. 2. Schematic stratigraphic sections of the studied fossil localities in Bajo de San Julián, Argentina (A) and Cerro Bautista, Uruguay (B), showing the Bouchardia−beds.
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