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1,369 results for “Sexual Dimorphism”
Fig. 5 in A Rare Flatfish, Samaris spinea (Teleostei: Pleuronectiformes: Samaridae) from the Ogasawara Islands, Japan, with Notes on Its Distribution, Taxonomy and Sexual Dimorphism
Fig. 5. CT images of osteology of head and anterior body on ocular side in Samaris spinea, NSMT-P 109872, 32.9 mm SL. EC: epicentrum; HM: hypomeral.
Fig. 4 in A Rare Flatfish, Samaris spinea (Teleostei: Pleuronectiformes: Samaridae) from the Ogasawara Islands, Japan, with Notes on Its Distribution, Taxonomy and Sexual Dimorphism
Fig. 4. CT images of transformed scales with small spines along dorsal (A) and ventral (B) margins of caudal peduncle on ocular side of Samaris spinea, NSMT-P 109872, 32.9 mm SL.
Fig. 3 in A Rare Flatfish, Samaris spinea (Teleostei: Pleuronectiformes: Samaridae) from the Ogasawara Islands, Japan, with Notes on Its Distribution, Taxonomy and Sexual Dimorphism
Fig. 3. CT images of osteology on ocular (A) and blind (B) sides of Samaris spinea, NSMT-P 109872, 32.9 mm SL.
Fig. 2 in A Rare Flatfish, Samaris spinea (Teleostei: Pleuronectiformes: Samaridae) from the Ogasawara Islands, Japan, with Notes on Its Distribution, Taxonomy and Sexual Dimorphism
Fig. 2. Lateral view of ocular (A) and blind (B) sides of Samaris spinea, NSMT-P 109872, 32.9 mm SL, Ogasawara Islands, Japan.
Fig. 1 in A Rare Flatfish, Samaris spinea (Teleostei: Pleuronectiformes: Samaridae) from the Ogasawara Islands, Japan, with Notes on Its Distribution, Taxonomy and Sexual Dimorphism
Fig. 1. Map showing collection localities for specimens of Samaris spinea reported. Star, diamond and triangles: records for the present specimen, and those in Amaoka et al. (2004) and Mihara and Amaoka (2004), respectively.
Fig. 2 in Sexually Dimorphic Breast-Feathers In The Kentish Plover Charadrius Alexandrinus
Fig. 2. The length of mean breast-feathers in the Kentish Plover in relation to the date of egg-laying. (a) males: rs = – 0.391, P = 0.003, N = 57; (b) femalesy: rs = – 0.131, P = 0.332, N = 57
Fig 2 in Sexual Size Dimorphism In Free-Living Populations Of Mus Musculus: Are Male House Mice Bigger?
Fig 2. Variation in SSD during the first five weeks of postnatal development in five mice populations. SSD is expressed as Lowich-Gibbons ratios of mean body weight (see under Material and Methods)
Fig. 1 in Sexual Size Dimorphism In Free-Living Populations Of Mus Musculus: Are Male House Mice Bigger?
Fig. 1. Map of the studied localities: 1 = Czech Republic, 2 = The Balkans, 3 = Iran, 4 = Jordan, 5 = hybrids. See Material and Methods for coordinates of the localities
Figure 3. I in Sexual dimorphism in Kinosternon scorpioides (Linnaeus, 1766) from the Brazilian Amazon
Figure 3. I- Principal Component Analysis/wireframe chart of shape (carapace - A and C; and plastron B and D) and II- Discriminant/ Histogram/wireframe function analysis of shape (carapace - A and C; and plastron B and D) of Kinosternon scorpioides. São Luiz-MA, Brazil, 2019. Legend: medium-gray line, black-variation line, blue-male, red-female.
Figure 2 in Sexual dimorphism in Kinosternon scorpioides (Linnaeus, 1766) from the Brazilian Amazon
Figure 2. Location of the ladmarks arranged in carapace - A and plastron - B of Kinosternon scorpioides. São Luiz-MA, Brazil, 2018.
Figure 1 in Sexual dimorphism in Kinosternon scorpioides (Linnaeus, 1766) from the Brazilian Amazon
Figure 1. Geographical distribution of Kinosternon scorpioides collection points. São Luiz -MA, Brazil, 2019.
Fig. 4 in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 4. Vizcainocypria viator gen. nov. sp. nov., male (MUVHNZY0011). A: A2. B: Right prehensile palp. C: Left prehensile palp. D: Hemipenis. E: Zenker organ. Scale bars: A–E = 50 µm.
Fig. 2 in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 2. Vizcainocypria viator gen. nov. sp. nov., female (MUVHNZY0012). A: A1 (arrow pointing to apical claw on penultimate segment). B: A2. C: Md coxa. D: Md palp. E: Detail of α and β setae. F: Mxl. Scale bars: A–F = 50 µm.
Fig. 3 in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 3. Vizcainocypria viator gen. nov. sp. nov., female (MUVHNZY0012). A: T1. B: T2. C: T3. D: CR. E: Caudal attachment. Scale bars: A–E = 50 µm.
Fig. 6 in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 6. Male copulatory organs (hemipenes) of different species of Cyclocyprididae. A: Cyclocypris, B: Cypria, C: Physocypria, D: Dentocypria, E: Keysercypria, F: Brasilocypria, G: Claudecypria, H: Vizcainocypria. Redrawn from Almeida et al. (2023): F, G; Karanovic (2011): C (P. bullata), E; Hartmann (1959): H (V. granadae); Meisch (2000): A, B (C. exsculpta, C. ophtalmica), C (P. kraepelini); Savatenalinton (2017): D; Smith and Janz (2008): B (C. matzkeae), C (P. nipponica, P. biwaensis); Wouters (1984): B (C. subsalsa). Scale bars are shown when available: D. smithi = 46 µm; C. ovum, C. ophtalmica, C. subsalsa, P. nipponica, P. biwaensis, D. mesquitai, B. pea, B. alisonae, C. mesquitai, C. rochei, V. viator = 50 µm; C. matzkeae, P. bullata, K. affinis, K. deformis = 100 µm.
Fig. 1 in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 1. Vizcainocypria viator gen. nov. sp. nov., female (A, C–G, I), male (B, H). A: Mature female specimen. B: Mature male specimen. C: CpL from right side (MUVHNZY0020). D: CpF (MUVHNZY0019). E: CpD (MUVHNZY0018). F: LVi (MUVHNZY0016). G: Detail of the internal tooth (MUVHNZY0016). H: RVi (MUVHNZY0011). I: Detail of the tubercles on RV margin (MUVHNZY0017). Scale bars: A–F, H = 200 µm; G = 10 µm; I = 5 µm.
Fig. 5. Maximum likelihood tree for 28S in Fig. 1 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 5. Maximum likelihood tree for 28S (A) and COX1 (B) genes. Red branches indicate the presence of tubercles on the RV margin.
Fig. 8. The IL-6 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 8. The IL-6 expression levels of Japanese eel and giant mottled eel reared in different spectra. W: white light; B: blue light; G: green light; R: red light; black: dark. Different letters indicate significant differences between different spectra groups of the same eel species (p <0.05).
Fig. 7 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 7. The LZM expression levels of Japanese eel and giant mottled eel reared in different spectra. W: white light; B: blue light; G: green light; R: red light; black: dark. Different letters indicate significant differences between different spectra groups of the same eel species (p <0.05).
Fig. 6 in Fig. 4 in Identification of Sexually Dimorphic Genes in Pectoral Fin as Molecular Markers for Assessing the Sex of Japanese Silver Eels ().
Fig. 6. The SOD expression levels of Japanese eel and giant mottled eel reared in different light spectra. W: white light; B: blue light; G: green light; R: red light; black: dark. Different letters indicate significant differences between different spectra groups of the same eel species (p <0.05).
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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