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305 results for “Lamina”
Fig. 9 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse
Fig. 9. Gotra elegans sp. nov. (A, C, D, KPM-NK 75822; B, E, KPM-NK 75823) and Hoplocryptus ashoroensis sp. nov. (F-J, NIAES) ― A, C, lateral habitus; B, dorsal habitus; C, H, head, frontal view; D, head, mesoscutum and scutellum, dorsal view; E, I, propodeum, dorsal view; J, right fore wing.
Fig. 4. Agrothereutes minousubae Nakanishi, 1965 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse
Fig. 4. Agrothereutes minousubae Nakanishi, 1965 (A, B, KPM-NK 76585; C, D, KPM-NK 76590) and Aritranis kuro sp. nov. (E, G, I, KPM-NK 75824; F, H, KPM-NK 75825; J, K, KPM-NK 76577) ― A, C, E, J, lateral habitus; B, tegula and humeral plate (red arrow), dorso-lateral view; D, G, K, head, frontal view; F, dorsal habitus; H, propodeum, dorsal view; I, right wings.
Fig. 7. Gambrus homonae Sonan, 1930 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse
Fig. 7. Gambrus homonae Sonan, 1930 (A, KPM-NK 76572; B-D, 76568; E, KPM-NK 76573) ― A, E, lateral habitus; B, head, frontal view; C, propodeum, dorsal view; D, right fore wing.
Fig. 3 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse
Fig. 3. Aritranis kuro sp. nov. (A, KPM-NK 75838), Buathra nipponica sp. nov. (B, KPM-NK 75746), Cryptus daidaigaster sp. nov. (C, NIAES), Gambrus homonae Sonan, 1930 (D, KPM-NK 76566); Glabridorsum japonicum sp. nov. (E, KPM-NK 75742), Gotra elegans sp. nov. (F, KPM-NK 75822); Hoplocryptus ashoroensis sp. nov. (G, NIAES), Ho. ezoensis sp. nov. (H, KPM-NK 75800), Ho. intermedius sp. nov. (I, KPM-NK 75804), Ho. japonicus sp. nov. (J, KPM-NK 75771), Ho. maculatus sp. nov. (K, KPM-NK 75781), Ho. pini (L, KPM-NK 76579), Ho. toshimensis sp. nov. (M, KPM-NK 75797), Picardiella melanoleuca (Gravenhorst, 1829) (N, KPM-NK 75744) and Trychosis breviterebratus sp. nov. (N, KPM-NK 75758), apex of ovipositor, lateral view.
Fig. 8 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse
Fig. 8. Glabridorsum japonicum sp. nov. (A, C, E, G, KPM-NK 75742; B, D, F, KPM-NK 75743) ― A, lateral habitus; B, head, mesosoma and metasoma, dorsal view; C, D, mesosoma, lateral view; E, head, frontal view; F, propodeum, dorsal view; G, apical part of right fore wing.
Plate III: Figures 15-19. Lestes debellardi sp.n. (15) holotype male, pectoral color pattern, ventral view; (16) segment 10 with anal appendages, same specimen, left lateral view; (17) same, dorsal view; (18) penis of paratype, right lateral view; (19) same, ventral view. Figures 20-22. Epipleoneura lamina. (20) penis, right lateral view. (21) same, ventral view; (22) hind margin of pronotum of female taken in tandem, dorsal view. Figure 22a. Neoneura denticulata (?). hind margin of pronotum (female), dorsal view. Figures 23-24. Neoneura desana, female taken in tandem. (23) color pattern of head, dorsal view; (24) hind margin of pronotum, dorsal view in Dragonflies (Odonata) From The Sierras Of Tapirapeco And Unturan, In The Extreme South Of Venezuela
Plate III: Figures 15-19. Lestes debellardi sp.n. (15) holotype male, pectoral color pattern, ventral view; (16) segment 10 with anal appendages, same specimen, left lateral view; (17) same, dorsal view; (18) penis of paratype, right lateral view; (19) same, ventral view. Figures 20-22. Epipleoneura lamina. (20) penis, right lateral view. (21) same, ventral view; (22) hind margin of pronotum of female taken in tandem, dorsal view. Figure 22a. Neoneura denticulata (?). hind margin of pronotum (female), dorsal view. Figures 23-24. Neoneura desana, female taken in tandem. (23) color pattern of head, dorsal view; (24) hind margin of pronotum, dorsal view
Fig. 6 in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 6. Lamina density vs. femur length of sauropodomorph dinosaur taxa (Plateosaurus and neosauropods). Among the neosauropods, lamina density does not correlate with femur length, although a slight decrease may take place with increasing femur length (Slope = -0.001; Intercept = 5.61; Pearson's R = -0.372, two-tailed p = 0.052). High variability of lamina density in Plateosaurus may be related to its developmental plasticity (cf. Sander and Klein 2005).
Fig. 5 in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 5. Comparison of dinosaur and mammal lamina density. A test for normality of the combined distributions failed (which is common for large datasets), but descriptive statistics suggest the dataset may still be normal (skew [lopsidedness] = 0.449; kurtosis [peakedness or flatness] = -0.107). Mean mammal lamina density differs significantly from mean dinosaur lamina density (independent t-test, t = 5.928; p <0.001). A non-parametric alternative suggests an equally significant difference between the medians (Mann-Whitney U statistic = 752.0; two-tailed p value <0.001). For discussion of these results, please refer to the main text.
Fig. 4 in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 4. Comparison of the frequency distributions of lamina density of the different mammal groups. These data represent 24 of our own samples complemented with 15 elephantid samples from Curtin et al. (2012). Mammal lamina density follows a normal distribution. Descriptive statistics of mammal lamina density: mean = 4.154 laminae/mm; SD = 1.517 laminae/ mm; skew = 0.964 and kurtosis = 0.289. For further discussion please refer to the main text.
Fig. 3 in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 3. Comparison of the frequency distributions of lamina density of sauropodomorph dinosaur taxa. The distribution follows a normal distribution. Descriptive statistics for sauropod lamina density: mean = 5.76 laminae/mm; SD = 1.386 laminae/mm; skew = 0.842; kurtosis = 0.021. For further discussion please refer to the main text.
Fig. 2 in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 2. Laminar bone tissue in a Brachiosaurus humerus (MFN t7). One lamina is defined as the distance from the center of a vascular canal to the center of the following vascular canal, as indicated by the arrows (cf. Sander and Tückmantel 2003).
Fig. 1. Static and dynamic osteogenesis. A in Constraints on the lamina density of laminar bone architecture of large-bodied dinosaurs and mammals
Fig. 1. Static and dynamic osteogenesis. A. Static osteogenesis by static osteoblasts proliferating in situ from mesenchymal tissue. The random orientation of the osteoblasts creates a random local fibre orientation of the produced matrix. B. Static osteoblasts turn into static osteocytes as they become entrapped in the mineralizing woven bone matrix. C. Dynamic osteoblasts arrange themselves on the woven bone and start producing highly organized primary bone, occasionally trapping a dynamic osteoblast, which will then become a dynamic osteocyte. D. Static and dynamic osteocyte lacunae in a longitudinal section of a humerus of the titanosaur Alamosaurus. A–C modified from Marotti (2010), D modified from Stein and Prondvai (2014).
LAMINA III Fig. 1 in Amphisbaena Muñoai. N . Sp ( Amphisbaenidae )
LAMINA III Fig. 1 Zona gular de Amphisbaena darwini D. & B. Ejemplar N° 585 Col. Herp. M. N H. N., (Obtenido en el Laboratorio antes de su nacimiento al hacer la disección de un ejemplar ♀ adulto.) Fig. 2 Idem, Ejemplar N° 860 Col. Herp. M.N. H. N., Adulto. Fig. 3 Idem, Ejemplar N ° 180 Col. Herp. M. N H. N., Juvenil. Figs. 4, 5, 6 Zona gular de Amphisbaena muñoai n. sp., Lote N ° 865 Col. Herp. M.N. H. N., ejemplares A, B y C. Fig. 7 Zona cloacal de Amphisbaena muñoai n. sp., Ejemplar N° 181 Col. Herp. M.N. H. N.
LAMINA II in Amphisbaena Muñoai. N . Sp ( Amphisbaenidae )
LAMINA II Amphisbaena darwini Duméril et Bibron (juvenil). (Ejemplar N° 180 Col. Herp. M.N. H. N.) Cabeza: Fig. 1, norma dorsal. Fig. 2, norma ventral. Fig. 3, norma lateral.
LAMINA I in Amphisbaena Muñoai. N . Sp ( Amphisbaenidae )
LAMINA I Amphisbaena muñoai n. sp. Holotipo. Ejemplar N° 587 Col. Herp. M. N. H. N.) ( Cabeza: Fig.1, norma dorsal. Fig. 2, norma ventral. Fig. 3, norma lateral.
Figs. 9–15. Ninetis subtilissima Simon. 9. Female prosoma, frontal view. 10. Female cheliceral laminae, frontal view. 11 in Ninetis subtilissima Simon, 1890 (Araneae: Pholcidae): Redescription and SEM Ultrastructure
Figs. 9–15. Ninetis subtilissima Simon. 9. Female prosoma, frontal view. 10. Female cheliceral laminae, frontal view. 11. Stridulatory files on male chelicera. 12. Location of cheliceral gland openings (arrow) near tip of fang. 13. Detail of fig. 12, showing two pores. 14. Female palpal tarsal organ (TO). 15. Male palpal tarsal organ (TO).
Text-fig. 7. Tachyglossus aculeatus. Ventrolateral view of the head endoskeleton of a specimen shortly after it had left the pouch. fp: foramen prooticum; lpc: limbus praecapsularis (blue); ls: supracapsular lamina. (Modified from Gaupp 1913.) in Cartilago Teniformis And Its Derivatives: Additional Information On The Basic Composition And Evolution Of The Skull
Text-fig. 7. Tachyglossus aculeatus. Ventrolateral view of the head endoskeleton of a specimen shortly after it had left the pouch. fp: foramen prooticum; lpc: limbus praecapsularis (blue); ls: supracapsular lamina. (Modified from Gaupp 1913.)
Text-fig. 6. Ornithorhynchus anatinus. Transverse section through the otic region of the head of a 180-mm specimen. ls: supracapsular lamina; lsc: lateral semicircular canal; mt: musculus temporalis; opa: parietal bone; opl: pluteal bone; ppe: parietal process of endocranium (blue). (Modified from Zeller 1989.) in Cartilago Teniformis And Its Derivatives: Additional Information On The Basic Composition And Evolution Of The Skull
Text-fig. 6. Ornithorhynchus anatinus. Transverse section through the otic region of the head of a 180-mm specimen. ls: supracapsular lamina; lsc: lateral semicircular canal; mt: musculus temporalis; opa: parietal bone; opl: pluteal bone; ppe: parietal process of endocranium (blue). (Modified from Zeller 1989.)
Text-fig. 8. Tachyglossus aculeatus. Transverse section through the temporal region of the adult head. Membranous parts blue, autostoses brown and allostoses purple. gg: ganglion gasseri; lop: lamina obturatoria periotici; ms: sphenobturatory membrane; mt: musculus temporalis; oo: os obturans; opa: parietal bone. (Modified from Kuhn and Zeller 1987.) in Cartilago Teniformis And Its Derivatives: Additional Information On The Basic Composition And Evolution Of The Skull
Text-fig. 8. Tachyglossus aculeatus. Transverse section through the temporal region of the adult head. Membranous parts blue, autostoses brown and allostoses purple. gg: ganglion gasseri; lop: lamina obturatoria periotici; ms: sphenobturatory membrane; mt: musculus temporalis; oo: os obturans; opa: parietal bone. (Modified from Kuhn and Zeller 1987.)
Text-fig. 4. Dorsal view of endocranium of a Devonian osteolepiform (Eusthenopteron foordi). Derivatives of the teniform cartilages blue (cf. fig. 7 in Bjerring 2015). ab: anterolateral bar of otico-occipital (Jarvik 1954) which corresponds to the orbitoparietal commissure of the armadillo; rfsa: endoskeleton above the supra-auditive fossa which corresponds to the parietal lamina of the armadillo; tn: tectum nasi; to: tectum orbitae which corresponds to the orbital cartilage and the orbitonasal commissure of the armadillo. in Cartilago Teniformis And Its Derivatives: Additional Information On The Basic Composition And Evolution Of The Skull
Text-fig. 4. Dorsal view of endocranium of a Devonian osteolepiform (Eusthenopteron foordi). Derivatives of the teniform cartilages blue (cf. fig. 7 in Bjerring 2015). ab: anterolateral bar of otico-occipital (Jarvik 1954) which corresponds to the orbitoparietal commissure of the armadillo; rfsa: endoskeleton above the supra-auditive fossa which corresponds to the parietal lamina of the armadillo; tn: tectum nasi; to: tectum orbitae which corresponds to the orbital cartilage and the orbitonasal commissure of the armadillo.
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Allen Brain Atlas
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