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17 results for “Gint”

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zenodo40/100

Figures 50–57 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 50–57: Gint banfasae sp. n., paratype males. Figures 50–52. Right chelicera, dorsal (50) and ventral (51) views, and ventral view under UV fluorescence (52). Scale bar: 400 µm. Figures 53–57. Paratype 1531. Left hemispermatophore: capsule region in posterior (53), convex compressed (54), convex (55) and anterior (56) views; whole hemispermatophore, convex view (57). Scale bars: 200 µm, 500 µm.

opencc-by-4.0Dec 2019View details →
zenodo40/100

Figures 13–32 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 13–32: Gint banfasae sp. n. Figures 13–21. Holotype male. Pedipalp chela, dorsal (13), external (14), and ventrointernal (15) views. Pedipalp patella, dorsal (16), external (17), and ventral (18) views. Pedipalp femur and trochanter, internal (19), ventral (20) and dorsal (21) views. Figures 22–32. Paratype female. Pedipalp chela, dorsal (22), external (23), and ventrointernal (24) views. Pedipalp patella, dorsal (25), external (26), and ventral (27) views. Pedipalp femur and trochanter, internal (28), ventral (29) and dorsal (30) views. Pedipalp chela, movable (31) and fixed (32) fingers dentate margin. The trichobothrial pattern is indicated in Figures 14–17, 19, 21 (white circles).

opencc-by-4.0Dec 2019View details →
zenodo40/100

Figures 41–42 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 41–42: Gint banfasae sp. n. paratype male, carapace and tergites (41), coxosternal area and sternites (42). UV fluorescence. Scale bar: 1 mm.

opencc-by-4.0Dec 2019View details →
zenodo40/100

Figures 58-59 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 58-59: Gint banfasae sp. n., two male paratypes in vivo habitus, photograph of animal on natural substrate in the field at the collection site (58), and image taken in the laboratory with dark contrast stone background (59).

opencc-by-4.0Dec 2019View details →
zenodo40/100

Figures 33–40 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 33–40: Gint banfasae sp. n. Figures 33, 38–40. Holotype male, metasoma V and telson lateral view (33), metasoma and telson, lateral (38), ventral (39), and dorsal (40) views. Figures 34–37. Paratype female, metasoma V and telson lateral view (34), metasoma and telson, lateral (35), ventral (36), and dorsal (37) views. Scale bar: 10 mm (35–40).

opencc-by-4.0Dec 2019View details →
zenodo40/100

Figures 1–4 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 1–4: Gint banfasae sp. n. Figures 1–2. Holotype male, dorsal (1) and ventral (2) views. Figures 3–4. Paratype female, dorsal (3) and ventral (4) views. Scale bar: 10 mm.

opencc-by-4.0Dec 2019View details →
zenodo36/100

Figure 62 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figure 62: Map showing confirmed distribution of Gint spp.

opencc-by-4.0Dec 2019View details →
zenodo36/100

Figures 60–61 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 60–61: Gint banfasae sp. n., type locality.

opencc-by-4.0Dec 2019View details →
zenodo32/100

Figure 2 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 2. Post-pachytene cells of Gint species after Giemsa staining (A, C, E, G, I, K, M, O) and FISH with 18S rDNA (red signals) (B, D, F, H, J, L, N, P). A, B, G. banfasae cytotype I (2 n = 18 – 7II + IV). C, D, G. banfasae cytotype II (2n= 18 – 6II + VI). E, F, G. banfasae cytotype III (2n = 19 – 5II + III + VI). G, H, G. dabakalo cytotype I (2n = 23 – 9II + V). I, J, G. dabakalo cytotype II (2n = 24 – 8II + III + V). K, L, G. dabakalo cytotype III (2n = 27 – 8II + 2III + V). M, N, G. gaitako (2n = 30 – 13II + IV). O, P, G. maidensis (2n = 34). Abbreviations: II, bivalent; III, trivalent; IV, quadrivalent; V, pentavalent; VI, hexavalent. Arrowheads indicate the position of 18S rDNA. Scale bar = 10 µm.

opennotspecifiedSep 2022View details →
zenodo32/100

Figure 7 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 7. Types of meiotic multivalent associations in Gint spp. with schemes of hypothesized intra- or interchromosomal rearrangements leading to observed multivalent formation.A,G. dabakalo – a trivalent arising from fission of the chromosome. B, G. dabakalo – a pentavalent originating from three independent fusion events. C, G. gaitako – a quadrivalent resulting from reciprocal translocation. D, G. banfasae – a quadrivalent as a result of reciprocal translocation. E, G. banfasae – a hexavalent arising through two independent events: (1) a fission of chromosome 1 involved in quadrivalent; (2) subsequent fusion of an emerging chromosome fragment with another chromosome. F, G. amoudensis – a quadrivalent arising from the reciprocal translocation. G, G. amoudensis – a hexavalent originated from the reciprocal translocation of the chromosome involved in the quadrivalent and another chromosome.

opennotspecifiedSep 2022View details →
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Figure 6 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 6. Ancestral state reconstruction analyses based on the Bayesian tree from this study, depicting: A, number of chromosomes; B, position of 18S rDNA. Results of maximum parsimony analysis reconstructing ancestral states for both cytogenetic characters are visualized by colours of the circles. Arrowheads indicate hypothetical inversion on 18S rDNAbearing chromosomes.

opennotspecifiedSep 2022View details →
zenodo32/100

Figure 5 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 5. Bayesian tree of the Gint species based on the concatenated data set (16S and COI), complemented with summarized cytogenetic data of the species studied. Numbers above branches correspond to values for highly supported nodes as follows: Bayesian posterior probabilities (PP)> 0.95/maximum likelihood bootstrap> 70%. Specimen IDs depicted in bold indicate individuals based on chromosome counts determined for the corresponding Gint species in previous studies (see: Kovařík et al., 2013; Kovařík & Mazuch, 2015; Kovařík et al., 2018). Abbreviations: cyt, cytotype; 2n, diploid number of chromosomes; II, bivalent; III, trivalent; IV, quadrivalent; V, pentavalent; VI, hexavalent.

opennotspecifiedSep 2022View details →
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Figure 3 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 3. Post-pachytene cells of Gint amoudensis and G. gubanensis after Giemsa staining (A, C, E, G, I) and FISH with 18S rDNA (red signals) (B, D, F, H, J). A, B, G. amoudensis cytotype I (2n = 36 – 16II + IV). C, D, G. amoudensis cytotype II (2n = 35 – 14II + III + IV). E, F, G. amoudensis cytotype III (2n = 36 – 15II + VI). G, H, G. amoudensis cytotype IV (2n = 35 – 13II + III + VI). I, J, G. gubanensis (2n = 45 – 21II + III). Abbreviations: II, bivalent; III, trivalent; IV, quadrivalent; VI, hexavalent. Arrowheads indicate the position of 18S rDNA. Scale bar = 10 µm.

opennotspecifiedSep 2022View details →
zenodo32/100

Figure 4 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 4. Post-pachytene cells of Gint species after FISH with (TTAGG)n telomeric probe (red signal). A, G. banfasae cytotype III (2n = 19 – 5II + III + VI). B, G. dabakalo cytotype II (2n = 24 – 8II + III + V). C, G. gaitako (2n = 30 – 13II + IV). D, G. maidensis (2n = 34 – 17II). E, G. amoudensis cytotype IV (2n = 35 – 13II + III + VI). F, G. gubanensis (2n = 45 – 21II + III). Abbreviations: II, bivalent; III, trivalent; IV, quadrivalent; V, pentavalent; VI, hexavalent. Scale bar = 10 µm.

opennotspecifiedSep 2022View details →
zenodo28/100

Figure 1 in Tracking the trends of karyotype differentiation in the phylogenetic context of Gint, a scorpion genus endemic to the Horn of Africa (Scorpiones: Buthidae)

Figure 1. Map showing distribution of the sampled Gint species. Bottom right – G. amoudensis.

opennotspecifiedSep 2022View details →
zenodo28/100

Figures 43–49 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 43–49: Gint banfasae sp. n., paratype male. Figures 43–45. Metasoma and telson dorsal (43), lateral (44) and ventral (45) views. Scale bar: 2 mm. Figures 46–49. Left pedipalp, dorsal (46), external (47), ventral (48) and internal (49) views.. Scale bar: 1 mm UV fluorescence.

opencc-by-4.0Dec 2019View details →
zenodo28/100

Figures 5–12 in Scorpions of the Horn of Africa (Arachnida Scorpiones) Part XVIII Gint banfasae sp n from Somaliland (Buthidae)

Figures 5–12: Gint banfasae sp. n. Figures 5, 7. Holotype male, chelicerae, carapace and tergites I–III (5) and sternopectinal region and sternites (7). Figures 6, 8, 9–12. Paratype female, chelicerae, carapace and tergites I–III (6), sternopectinal region and sternites (8), distal segments of right legs I–IV, retrolateral views (9–12).

opencc-by-4.0Dec 2019View details →

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