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782 results for “pacing”
Figure 5 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 5. Anatomy of Radomaniola curta meridionalis subsp. nov. A–F, holotype (MNCN 15.05/200152). A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, head of male and penis. E, penis. F, prostate gland.
Figure 4 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 4. Shells, operculum and radulae of Radomaniola curta meridionalis subsp. nov. A, B, holotype (MNCN 15.05/200152). C, D, shell (UGSB 14439). E–J, holotype (MNCN 15.05/200152). E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 7 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 7. Anatomy of Radomaniola curta montenegrensis subsp. nov. A–E, H, I, L, paratypes (UGSB 19515). F, G, J, K, UGSB 19043. A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, F, pallial oviduct. E, G, bursa copulatrix and seminal receptacles. H, J, head of male and penis. I, K, penis. L, prostate gland.
Figure 2. Majority-rule consensus tree from a in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 2. Majority-rule consensus tree from a Bayesian analysis based on the multilocus dataset (COI, 16S and 28S) of Radomaniola. Branch support values (BPP, Bayesian posterior probability; BS, bootstrap support) are provided on nodes. Tip labels correspond to the sequence codes given in the Supporting Information (Table S1). Vertical bars on the right represent entities identified by the molecular species delimitation methods automatic barcode gap discovery (ABGD), Bayesian generalized mixed Yule-coalescent method (bGMYC) and Poisson tree processes species delimitation method in a Bayesian framework (bPTP) and the multi-rate version (mPTP) with Bayesian support values. Scale bar below topology: substitutions per site.
Figure 10 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 10. Shells, operculum and radulae of Radomaniola curta maxima subsp. nov. A, B, holotype (MNCN 15.05/200153). C–J, paratypes (UGSB 19540). C, D, shells. E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 15 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 15. Anatomy of Radomaniola jovanovskae sp. nov. A–H, paratypes (UGSB 19517). A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, pallial oviduct. E, bursa copulatrix and seminal receptacles. F, head of male and penis. G, penis. H, prostate gland.
Figure 3 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 3. Rate, correlation and mode of evolution of 40 traits along the Radomaniola phylogeny. A, time-calibrated phylogeny and trait distribution. Traits were scaled between 0.01 and 1 to display their variation among taxa. B, diagonal showing the Brownian motion rate of trait evolution and off-diagonals the pairwise evolutionary correlation. Modularity is suggested by a higher correlation within a functional organ (black square) than between two groups. Integration is indicated by a high or low within-group correlation. C, barplots showing, for each group of traits, the support [corrected Akaike information criterion (AICc) weight] for the modes of trait evolution.
Figure 12 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 12. Shells, operculum and radulae of Radomaniola dolens sp. nov. A, B, holotype (MNCN 15.05/200159). C–J, paratypes (UGSB 16932). C, D, shells. E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 14 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 14. Shells, operculum and radulae of Radomaniola jovanovskae sp. nov. A, B, holotype (MNCN 15.05/200161). C–J, paratypes (UGSB 19517). C, D, shells. E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 20 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 20. Shells, operculum and radulae of Radomaniola szarowskae sp. nov. A, B, holotype (MNCN 15.05/200167). C–J, paratypes (UGSB 18556). C, D, shells. E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 9 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 9. Anatomy of Radomaniola curta omblensis subsp. nov. A–H, paratypes (UGSB 18778). A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, pallial oviduct. E, bursa copulatrix and seminal receptacles. F, head of male and penis. G, H, penis. I, prostate gland.
Figure 22 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 22. Shells, operculum and radulae of Radomaniola variabilis sp. nov. A, B, holotype (MNCN 15.05/200169). C, paratype (UGSB 23975). D, shell (UGSB 14440). E, F, shell (UGSB 2294). G–J, N, paratypes (UGSB 23975). G, H, operculum (G, inner side; H, outer side). I, protoconch. J, portion of radula ribbon (UGSB 23975). K, portion of radula ribbon (UGSB 2294). L, central radular teeth (UGSB 14440). M, outer marginal teeth (UGSB 2294). N, outer marginal teeth (UGSB 23975).
Figure 1 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 1. Map showing the location of the different populations of Radomaniola undergoing molecular examination in this study. The number and letter of each locality code refer to species and locality, respectively, and are explained in the Supporting Information (Tables S1 and S2). Type localities of other species known from the literature (i.e. 27, Radomaniola lacustris; 28, Radomaniola elongata; and 29, Radomaniola hessei) are also plotted on the map.
Figure 25 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 25. Anatomy of Radomaniola wolffi sp. nov. A–H, paratypes (UGSB 19533). A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, pallial oviduct. E, bursa copulatrix and seminal receptacles. F, head of male and penis. G, penis. H, prostate gland.
Figure 18 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 18. Shells, operculum and radulae of Radomaniola pesici sp. nov. A, B, holotype (MNCN 15.05/200163). C–J, paratypes (UGSB 19048). C, D, shells. E, F, operculum (E, inner side; F, outer side). G, protoconch. H, portion of radula ribbon. I, central radular teeth. J, outer marginal teeth.
Figure 23 in Shell features and anatomy of the springsnail genus Radomaniola (Caenogastropoda: Hydrobiidae) show a different pace and mode of evolution over five million years
Figure 23. Anatomy of Radomaniola variabilis sp. nov. A–G, I, paratypes (UGSB 23975). H, J, UGSB 14440. K, UGSB 2294. A, ctenidium and osphradium. B, stomach. C, partial nervous system. D, pallial oviduct. E, bursa copulatrix and seminal receptacles. F, prostate gland. G, H, head of male and penis. I–K, penis.
FIGURE 11 in A new species of Keratodegnathus Pace in Indonesia (Coleoptera, Staphylinidae)
FIGURE 11. Keratodegnathus javanicus sp. n., holotype female, posterior region of thorax and abdomen in dorsal view. Abbreviations: asc, adsutural carina; bc, basal carina; go1‒3, glandular opening type 1‒3 (each indicated by different arrowhead); pt, paratergite; sp, spiracle; tIII‒X, tergite III‒X.
FIGURES 6‒10 in A new species of Keratodegnathus Pace in Indonesia (Coleoptera, Staphylinidae)
FIGURES 6‒10. Keratodegnathus javanicus sp. n., holotype female. Head in anterodorsal view (6); mouthparts in dorsal view (7); anteromedian region of labrum in anterodorsal view (8); maxillo-labial complex in ventral view (9); distal region of prelabium in ventral view (10). Abbreviations: bst, basistipes; cd, cardo; clp, clypeus; cmb, connecting membrane; dmt, dorsal mandibular tooth; fr, frons; gal, galea; lac, lacinia; lbr, labrum; lig, ligula; llh, lateral lobe of hypopharynx; lp1‒3, labial palpomere 1‒3; md, mandible; md, mandible; mn, mentum; mst, mediostipes; mxp1‒4, maxillary palpomere 1‒4; pmns, premental sclerite; prl, prelabium; smn, submentum.
FIGURES 2‒5 in A new species of Keratodegnathus Pace in Indonesia (Coleoptera, Staphylinidae)
FIGURES 2‒5. Keratodegnathus javanicus sp. n., holotype female. Head and anterior region of thorax in lateral view (2); head in anterodorsal view (3); head, prothorax and elytral base in dorsal view (4; arrowheads indicate macrosetae); head and prothorax in ventral view (5). Abbreviations: acxc, anterior coxal carina; cl, clypeus; cmb, connecting membrane; cs, cervical sclerite; dmt, dorsal mandibular tooth; fr, frons; gal, galea; gen, gena; gp, gular plate; gr, genal carina; gs, gular suture; hr, hypostomal ridge; hs, hypostomal suture; hyp, hypomeron; hyr, hypomeral ridge; lac, lacinia; lbr, labrum; lpc, lateral pronotal carina; mn, mentum; mxp2‒4, maxillary palpomere 2‒4; nss, notosternal suture; ocr, occipital ridge; pd, pedicel; prl prelabium; pst, prosternum; ptp, posterior tentorial pit; sc, scape; smn, submentum; trt, trochantin; vt, vertex.
FIGURES 12‒18 in A new species of Keratodegnathus Pace in Indonesia (Coleoptera, Staphylinidae)
FIGURES 12‒18. Keratodegnathus javanicus sp. n., holotype female. Thorax and abdomen in ventral view (12); protarsus in lateral (13) and lateroventral (14) views; mesotarsus in lateroventral view (15); metatarsus in lateral view (16); distal region of metatarsomere 4 in lateroventral view (17); details of claw insertion and empodium of metatarsus (18). Abbreviations: aest3, metanepisternum; es, empodial seta; mc, marginal carina; sIII‒IX, sternite III‒IX; v3, metaventrite.
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International Brain Laboratory public data
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OpenNeuro
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