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445 results for “karyotype”

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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 →
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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 →
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Supplementary material 1 from: Wang J-h, Zheng X-d (2017) Comparison of the genetic relationship between nine Cephalopod species based on cluster analysis of karyotype evolutionary distance. Comparative Cytogenetics 11(3): 477-494. https://doi.org/10.3897/compcytogen.v11i3.12752

Chromosome relative length, supplemental formulae : Explanation note: Chromosome relative length, supplemental formulae and all of the original images are made available under the online digital repository Figshare, and it is free to access, in adherence to the principle of open data, more details in https://figshare.com/s/8d21a0db9ffe1f17d279

opencc-by-4.0Jul 2017View details →
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Supplementary material 1 from: Borisov YM, Kryshchuk IA, Gaiduchenko HS, Cherepanova EV, Zadyra SV, Levenkova ES, Lukashov DV, Orlov VN (2017) Karyotypic differentiation of populations of the common shrew Sorex araneus L. (Mammalia) in Belarus. Comparative Cytogenetics 11(2): 359-373. https://doi.org/10.3897/compcytogen.v11i2.11142

Collection sites, chromosome races and karyotypes of common shrews in the Dnieper and Pripyat river basins (Belarus) and neighboring areas :

opencc-by-4.0May 2017View details →
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Supplementary material 1 from: Di-Nizo CB, Banci KRS, Sato-Kuwabara Y, Silva MJJ (2017) Advances in cytogenetics of Brazilian rodents: cytotaxonomy, chromosome evolution and new karyotypic data. Comparative Cytogenetics 11(4): 833-892. https://doi.org/10.3897/CompCytogen.v11i4.19925

Table S1 : Explanation note: Sequences analysed for phylogenetic reconstruction (Maximum likelihood and Bayesian Inference) of Neacomys, with species, GenBank and lab/ field number, diploid and fundamental number (when available), locality and reference.

opencc-zeroJan 2018View details →
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Supplementary material 1 from: Pereira T, Reis A, Cardoso D, Cristiano M (2018) Molecular phylogenetic reconstruction and localization of the (TTAGG)n telomeric repeats in the chromosomes of Acromyrmex striatus (Roger, 1863) suggests a lower ancestral karyotype for leafcutter ants. Comparative Cytogenetics 12(1): 13-21. https://doi.org/10.3897/CompCytogen.v12i1.21799

Figure S1. Phylogenomic tree used to estimate the ancestral chromosome number. : Explanation note: Numbers at nodes represent the first and second most likely haploid chromosome number followed by posterior support values under Bayesian optimization and the ancestral haploid chromosome number with best likelihood under maximum likelihood optimization, as follows: [first haploid state (P.P.%)// second haploid state (P.P.%)// ML haploid state].

opencc-zeroJan 2018View details →
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Fig. 1 in Karyotype of Latibulus argiolus (Rossi, 1790) (Hymenoptera: Ichneumonidae)

Fig. 1. Karyogram of haploid chromosome set of L. argiolus. Scale bar: 5 µm. Рис. 1. Кариограмма гаплоидного хромосомного набора L. argiolus. МасШтаб: 5 мкм.

opennotspecifiedDec 2020View details →
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Figs 1–3 in Karyotypes of three species of the genus Trissolcus Ashmead, 1893 (Hymenoptera: Scelionidae)

Figs 1–3. Diploid karyograms of Trissolcus species: 1 — T. kozlovi, 2 — T. rufiventris, 3 — T. semistriatus. Bar = 10 µm. Рис. 1–3. Диплоидные кариограммы видов Trissolcus: 1 — T. kozlovi, 2 — T. rufiventris, 3 — T. semistriatus. МасШтаб 10 µm.

opennotspecifiedSep 2019View details →
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Fig. 8 a–d Aerotegmina kilimandjarica. a Karyotypes, b mitotic metaphase and c in The genus Aerotegmina (Orthoptera, Tettigoniidae, Hexacentrinae): chromosomes, morphological relations, phylogeographical patterns and description of a new species

Fig. 8 a–d Aerotegmina kilimandjarica. a Karyotypes, b mitotic metaphase and c diakinesis; arrows thick paracentromeric C-bands on medium pair and X. d Silver impregnation of diplotene (c) showing the presence of one active nucleolus organiser regions (NOR; arrow). Bar 10 μm

opennotspecifiedMar 2013View details →
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Fig. 4 in High congruence of karyotypic and molecular data on Hypostomus species from Brazilian southeast

Fig. 4 Details of the operational taxonomic units (OTUs) present in subclades 1 and 2 in the Bayesian analysis with the concatenation of nuclear and mitochondrial sequences. The numbers on the nodes represent the posterior probability values

opennotspecifiedJan 2021View details →
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Fig. 1 in High congruence of karyotypic and molecular data on Hypostomus species from Brazilian southeast

Fig. 1 Maximum likelihood tree obtained for the species of Hypostomus through mt-co1 sequences. The numbers on the nodes represent the bootstrap values

opennotspecifiedJan 2021View details →
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Fig. 4 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas

Fig. 4. (a) Neighbor-joining and (b) Maximum-likelihood trees constructed using 5S ribosomal DNA sequences from 4 Thunnus species and the outgroup, Scomber scombrus. NBT: T. orientalis, YFT: T. albacares, BET: T. obesus, LFT: T. alalunga. ◎indicates two subgroups of T. obesus.

opennotspecifiedJul 2018View details →
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Fig. 3 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas

Fig. 3. (a) Neighbor-joining and (b) Maximum-likelihood trees constructed with 17 cytochrome (Cyt) b gene sequences from 8 Thunnus species and the outgroup, Katsuwonus pelamis. NBT: T. orientalis, YFT: T. albacares, BET: T. obesus, LFT: T. alalunga.

opennotspecifiedJul 2018View details →
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Fig. 1 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas

Fig. 1. Sampling locations (ellipse) of Thunnus obesus, T. albacares, T. alalunga, and T. orientalis in Taiwanese waters.

opennotspecifiedJul 2018View details →
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FIGURE 1 in Karyotype of Propsilocerus akamusi (Tokunaga) from China (Diptera: Chironomidae)

FIGURE 1. Salivary glands of P. akamusi; ml = main lobe, sl = side lobe, d = duct, ig = imaginal disk.

opennotspecifiedDec 2004View details →
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FIGURE 3. A. Chromosome I in Karyotype of Propsilocerus akamusi (Tokunaga) from China (Diptera: Chironomidae)

FIGURE 3. A. Chromosome I of P. akamusi. Numbers designate chromosomal regions; other designations as in Figs. 1and 2. B. Centromere region of chromosome I; designations as in Figs. 1 and 2.

opennotspecifiedDec 2004View details →
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FIGURE 2 in Karyotype of Propsilocerus akamusi (Tokunaga) from China (Diptera: Chironomidae)

FIGURE 2. Karyotype of P. akamusi. Designations: IL and IR, IIL and IIR, IIL and IIR = left (L) and right (R) chromosomal arms; N = nucleolus, BR = Balbiani ring, arrows with question marks = suggested centromere bands (explanation in text).

opennotspecifiedDec 2004View details →
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FIGURES 1–5 in The study on karyotypes of five Grylloidea species (Orthoptera: Grylloidea) in Northeast China

FIGURES 1–5 Male karyotypes of five Grylloidea species. 1, G. supplicans; 2, G. sigillatus; 3, O. longicauda; 4, T. emma; 5, T. occipitalis.

opennotspecifiedOct 2007View details →
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FIGURE 7 in The karyotype of Blarinomys breviceps (Mammalia: Rodentia: Cricetidae) with comments on its morphology and some ecological notes

FIGURE 7. Internal dorsal view of stomach of Blarinomys breviceps (HGB440). Abbreviations: a—antrum, bf—bordering fold region, ce—cornified squamous epithelium, co—corpus, e—esophagus and ia—incisura angularis. Pylorus can not be seen because of the duodenum initial part.

opennotspecifiedOct 2008View details →

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