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9 results for “Pijnackeria”

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Fig. 2 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 2 Ranges of Pijnackeria taxa. 2n: A, P. lucianae; B, P. barbarae; C, P. lelongi; D, P. originis; 3n, P. masettii; 4n, P. hispanica. Sample acronyms as in Ghiselli et al. (2007). The area of P. recondita (Sierra Nevada) and P. hispanica (El Purche) samples is represented by a single dot south-east of PRA (Puerto La Ragua). Acronyms as in Tables 1 and 2

opennotspecifiedMay 2020View details →
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Fig. 5 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 5 Karyotype of Pijnackeria recondita. The karyotype is very similar to those of all other Pijnackeria species. a Female: 1st pair, heterochromosomes; the 2nd and 4th pairs bear a heterozygous satellite; b male: its unique sex chromosome (X0) allows indicating the first female pair as the heterochromosome pair in both P. recondita and, as a consequence, in P. hispanica

opennotspecifiedMay 2020View details →
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Fig. 3 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 3 Pijnackeria recondita food plants: Cytisus scoparius on the right and Cytisus sp. on the left

opennotspecifiedMay 2020View details →
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Fig. 9 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 9 Templeton network of the ef1-α gene sequences. Circle size is proportional to haplotype frequency; black dots represent missing/ideal haplotypes. Connections obtained with relaxed parameters are indicated

opennotspecifiedMay 2020View details →
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Fig. 1 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 1 Specimen of Pijnackeria hispanica: the nominal species of the new genus (corresponding to the originally described Leptynia hispanica species by Pantel 1890). Note the very short antennae and the pointed abdomen end peculiar to the taxon. Additional information and

opennotspecifiedMay 2020View details →
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Fig. 4 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 4 Geographical distribution of the haplotypes obtained both by sampling and from literature contributing to the molecular analysis. a cox2. b ef1-α. For the exact coordinates of the sampling sites, refer to Tables 1 and 2

opennotspecifiedMay 2020View details →
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Fig. 8 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 8 Parsimony network of the cox2 gene sequences. Circle size is proportional to haplotype frequency; black dots represent missing/ideal haplotypes. Connections obtained with relaxed parameters are indicated

opennotspecifiedMay 2020View details →
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Fig. 7 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 7 Schematic drawing of maximum likelihood/Bayesian inference on cox2 (A; − lnL = 3431.06/3503.44) and ef1-α (B; − lnL = 1958.30/20072.49) datasets. Numbers at nodes are bootstrap/posterior probability support values. Outgroup(s) have been omitted for graphical purposes

opennotspecifiedMay 2020View details →
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Fig. 6 in The puzzling taxonomic rank of Pijnackeria hispanica, a chimerical hybrid androgen (Insecta, Phasmida)

Fig. 6 Karyotype of the triploid Pijnackeria masettii (on the top) and of the tetraploid Pijnackeria hispanica (on the bottom) modified from Scali et al. (2013). P. masettii triplets 1–4, 6, 12, 17– 19 clearly support a 2 + 1 structure; 1st, 2nd, 13th, 15th, and 19th quartets of P. hispanica seem to suggest either a 2 + 2 structure or, better, a 2 + 1 + 1 structure

opennotspecifiedMay 2020View details →

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Last verified 2026-04-29Open record