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79 results for “Xiphinema”
Figure 22 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 22 - Xiphinema penevi sp. n. Juveniles and female: A–D Neck region of first- to fourth-stage juveniles E Anterior end of female F–J Tails of first to fourth juvenile stages and female. Scale bar: 30μm.
Figure 20 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 20 - Xiphinema penevi sp. n. Female. Variations in: A–D Anterior ends (B-holotype) F, J–L Vagina region G–I Tail shapes. Scale bars: 30 μm (A, B, F–I); 12 μm (C, D, J–L).
Figure 19 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 19 - Xiphinema penevi sp. n. Female. A Anterior end B Amphideal fovea outline C Variations in genital system: C1 Anterior uterus and partim posterior genital branch C2, C3 Region of vagina and uteri D Pharyngeal bulb E Tail. Scale bars: 25 μm.
Figure 2 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 2 - Xiphinema browni sp. n. Female: Variations in genital system: A, B Anterior genital branch C Posterior genital branch D–F Region of vagina and uteri A, B, D Kurdĕjov (type population) C, F Mohyla míru E Sokolnice. Scale bars: 25 μm.
Figure 5 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 5 - Xiphinema browni sp. n., Sokolnice. Male: A Anterior end B Pharyngeal bulbus C Posterior end D Spicules. Scale bars: 25 μm
Figure 18 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 18 - Xiphinema browni sp. n., Xiphinema parasimile, Xiphinema pachtaicum and Xiphinema penevi sp. n. Female: A–D Genital system E–L Vulval region A, E, I Xiphinema browni sp. n. B, F, J Xiphinema parasimile C, D, G, K Xiphinema pachtaicum H, L Xiphinema penevi sp. n. Scale bars: 30 μm (A–H); 12 μm (I–L).
Figure 17 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 17 - Xiphinema browni sp. n., Xiphinema parasimile, Xiphinema pachtaicum and Xiphinema penevi sp. n. Female and male: A–D Anterior ends E–H Labial region I–K Pharyngeal bulbs L, M, R Male tails N–Q Female tails A, E, I, M, N Xiphinema browni sp. n. B, F, K, O, R Xiphinema parasimile C, G, J, L, P Xiphinema pachtaicum D, H, Q Xiphinema penevi sp. n. Scale bars: 30 μm (A–D, I–R); 12 μm (E–H).
Figure 16 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 16 - Xiphinema browni sp. n., Xiphinema penevi sp. n. and Xiphinema pachtaicum. Female genital system comparison: A, E Posterior genital branch B–D Anterior genital branch A, B Xiphinema browni sp. n. C Xiphinema penevi sp. n. D, E Xiphinema pachtaicum. Scale bars: 25 μm
Figure 15 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 15 - Xiphinema browni sp. n., Xiphinema penevi sp. n. Xiphinema pachtaicum and Xiphinema parasimile. Female: A–C Anterior ends D–F Tail shapes G–J Pharyngeal bulbs A, D, G Xiphinema browni sp. n. B, E, I Xiphinema penevi sp. n. C, F, J Xiphinema pachtaicum H Xiphinema parasimile. Scale bars: 25 μm
Figure 14 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 14 - Hypothesis of the phylogenetic relationships of Xiphinema browni sp. n., Xiphinema parasimile, Xiphinema pachtaicum and Xiphinema penevi sp. n. based on ITS2 inferred from a Bayesian analysis using GTR+G model and Xiphinema italiae, Xiphinema diversicaudatum and Xiphinema vuittenezi Luc, Lima, Weischer & Flegg, 1964 as an outgroup. Posterior probabilities higher than 0.8 are presented.
Figure 11 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 11 - Hypothesis of the phylogenetic relationships of Xiphinema browni sp. n., Xiphinema parasimile, Xiphinema pachtaicum and Xiphinema penevi sp. n. based on 28S rDNA inferred from a Bayesian analysis using GTR+G model and Longidorus helveticus Lamberti, Kunz, Grunder, Molinari, De Luca, Agostinelli & Radicci, 2001 and Longidorus poessneckensis Altherr, 1974 as an outgroup. Posterior probabilities higher than 0.8 are presented.
Figure 1 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 1 - Xiphinema browni sp. n. Female: Variations in: A–C Anterior end D–F Pharyngeal bulbus G–I Tail shape A, D, G Kurdĕjov (type population) B, F, I Mohyla míru C, E, H Sokolnice. Scale bars: 25 μm
Figure 13 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 13 - Hypothesis of the phylogenetic relationships of Xiphinema browni sp. n. based on ITS1 inferred from a Bayesian analysis using GTR+G model and Xiphinema barense Lamberti, Roca, Agostinelli, Bleve-Zacheo, 1986, Xiphinema italiae and Xiphinema diversicaudatum as an outgroup. Posterior probabilities higher than 0.8 are presented.
Figure 12 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 12 - Hypothesis of the phylogenetic relationships of Xiphinema browni sp. n. and Xiphinema parasimile based on cox1 inferred from a Bayesian analysis using GTR+G model and Xiphinema italiae Mayl, 1953 and Xiphinema diversicaudatum (Micoletzky, 1927), Thorne, 1939 as an outgroup. Posterior probabilities higher than 0.8 are presented.
Figure 10 from: Lazarova S, Peneva V, Kumari S (2016) Morphological and molecular characterisation, and phylogenetic position of X. browni sp. n., X. penevi sp. n. and two known species of Xiphinema americanum-group (Nematoda, Longidoridae). ZooKeys 574: 1-42. https://doi.org/10.3897/zookeys.574.8037
Figure 10 - Hypothesis of the phylogenetic relationships of Xiphinema browni sp. n., Xiphinema parasimile, Xiphinema pachtaicum and Xiphinema penevi sp. n. based on 18S rDNA inferred from a Bayesian analysis using GTR+G model and Prionchulus punctatus (Cobb, 1917) Andrássy, 1958, Alaimus sp. and Tripylina sp. as an outgroup. Posterior probabilities higher than 0.8 are presented. The sequence of Xiphinema browni from Moča was not included due to the shorter length.
Figure 3 from: Sakai H, Takeda A, Mizukubo T (2011) First report of Xiphinema brevicolle Lordello et Costa, 1961 (Nematoda, Longidoridae) in Japan. ZooKeys 135: 21-40. https://doi.org/10.3897/zookeys.135.1716
Figure 3 - Xiphinema sp.(female) A–C Anterior region D–F Tail G–I Vulval region J–M Entire body.
Figure 6 from: Sakai H, Takeda A, Mizukubo T (2011) First report of Xiphinema brevicolle Lordello et Costa, 1961 (Nematoda, Longidoridae) in Japan. ZooKeys 135: 21-40. https://doi.org/10.3897/zookeys.135.1716
Figure 6 - Intra-population variation of vagina in females A Xiphinema brevicolle B Xiphinema sp.
Figure 5 from: Sakai H, Takeda A, Mizukubo T (2011) First report of Xiphinema brevicolle Lordello et Costa, 1961 (Nematoda, Longidoridae) in Japan. ZooKeys 135: 21-40. https://doi.org/10.3897/zookeys.135.1716
Figure 5 - Intra-population variation of tail in females A Xiphinema brevicolle B Xiphinema sp.
Figure 9. Phylogenetic relationships within the Xiphinema americanum-group complex. Bayesian 50 in Cryptic diversity and species delimitation in the Xiphinema americanum-group complex (Nematoda: Longidoridae) as inferred from morphometrics and molecular markers
Figure 9. Phylogenetic relationships within the Xiphinema americanum-group complex. Bayesian 50% majority rule consensus tree as inferred from D2-D3 expansion segments of 28S rRNA sequence alignment under the general time reversible model with invariable sites and gamma-shaped distribution. Posterior probabilities more than 65% are given for appropriate clades; bootstrap values greater than 50% are given on appropriate clades in the maximum likelihood analysis. Sequences newly obtained in this study are in bold. Scale bar = expected changes per site.
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