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99 results for “Tylenchida”
FIGURE 1 in EBRAHIM SHOKOOHI, JOAQUÍN ABOLAFIA & PHATU WILLIAM MASHELA (2020 Redescription of Basiria gracilis (Thorne, 1949) Siddiqi, 1963 (Rhabditida, Tylenchidae) from South Africa. Zootaxa, 4758: 387-396
FIGURE 1. Basiria gracilis (Thorne, 1949) Siddiqi, 1963. A: Neck of female; B: Anterior end; C: Female reproductive system; D: Entire female; E: Entire male; F: Spicule and gubernaculum; G: Postvulval uterine sac; H: Male posterior end. I: Female posterior end.
FIGURE 2 in Redescription of Basiria gracilis (Thorne, 1949) Siddiqi, 1963 (Rhabditida, Tylenchidae) from South Africa
FIGURE 2. Basiria gracilis (Thorne, 1949) Siddiqi, 1963 (light microscope). A: Neck; B: Female reproductive system (arrow pointing to spermatheca); C, D: Anterior end (arrow pointing to amphid); E, F: Anal region at spicules and bursa (arrow) level, respectively. G: Entire female; H: Female posterior end; I: Male posterior end; J: Lateral field; K: Vagina region; L: Entire male.
FIGURE 1 in Redescription of Basiria gracilis (Thorne, 1949) Siddiqi, 1963 (Rhabditida, Tylenchidae) from South Africa
FIGURE 1. Basiria gracilis (Thorne, 1949) Siddiqi, 1963. A: Neck of female; B: Anterior end; C: Female reproductive system; D: Entire female; E: Entire male; F: Spicule and gubernaculum; G: Postvulval uterine sac; H: Male posterior end. I: Female posterior end.
FIGURE 3. Helicotylenchus dihystera A–D in Molecular characterization of Helicotylenchus multicinctus and H. dihystera (Tylenchida: Hoplolaimidae) from Theobroma cacao in Nigeria
FIGURE 3. Helicotylenchus dihystera A–D: Head region, female vulva and tail. Stb=stylet knob; mb = median bulb; v = vulva, a = anus and p = projection (Scale bar =10 μm).
FIGURE 2. Photomicrographs Helicotylenchus multicinctus A–C in Molecular characterization of Helicotylenchus multicinctus and H. dihystera (Tylenchida: Hoplolaimidae) from Theobroma cacao in Nigeria
FIGURE 2. Photomicrographs Helicotylenchus multicinctus A–C: Head region, tail and female vulva. Stb = stylet knob; v = vulva and a = anus (Scale bar =10 μm).
FIGURE 5 in Molecular characterization of Helicotylenchus multicinctus and H. dihystera (Tylenchida: Hoplolaimidae) from Theobroma cacao in Nigeria
FIGURE 5. Phylogenetic relationship among Helicotylenchus species, based on analysis of the 28S D2D3 region with Maximum Likelihood (ML), using Caenorhabditis elegans as the outgroup. Newly obtained sequences are indicated by bold letters.
FIGURE 1 in Molecular characterization of Helicotylenchus multicinctus and H. dihystera (Tylenchida: Hoplolaimidae) from Theobroma cacao in Nigeria
FIGURE 1. Photomicrographs of the entire body of female nematodes A: Helicotylenchus multicinctus and B: H. dihystera (Scale bar=20 µm).
FIGURE 4 in Molecular characterization of Helicotylenchus multicinctus and H. dihystera (Tylenchida: Hoplolaimidae) from Theobroma cacao in Nigeria
FIGURE 4. Phylogenetic relationships among Helicotylenchus species, based on analysis of the 28S D2D3 region with maximum Parsimony (MP), using Caenorhabditis elegans as the outgroup. Newly obtained sequences are indicated by bold letters.
FIGURE 2 in Anguina paludicola sp. n. (Tylenchida: Anguinidae): The nematode associated with Rathayibacter toxicus infection in Polypogon monspeliensis and Lachnagrostis filiformis in Australia
FIGURE 2. Anguina paludicola sp. nov. (a) adult male, (b) adult female, (c) second stage juvenile. Scale bar represents 200 μm.
FIGURE 1 in Anguina paludicola sp. n. (Tylenchida: Anguinidae): The nematode associated with Rathayibacter toxicus infection in Polypogon monspeliensis and Lachnagrostis filiformis in Australia
FIGURE 1. Phenogram of Anguina populations based on average linkage cluster analysis of the percentage fixed differences among populations. Population reference codes are listed in Table 1.
FIGURE 3 in Anguina paludicola sp. n. (Tylenchida: Anguinidae): The nematode associated with Rathayibacter toxicus infection in Polypogon monspeliensis and Lachnagrostis filiformis in Australia
FIGURE 3. Anguina paludicola sp. nov. (a) oesophageal region of female, (b) posterior region of female, (c) oesophageal region of male, (d) posterior region of male, (e) oesophageal region of second stage juvenile, (f) genital primordium of second stage juvenile (lateral view). Each scale bar represents 50 μm.
FIGURE 4. Bayesian tree inferred using sequences D2–D3 in Morphological and molecular characterisation of Discotylenchus lorestanensis sp. n. (Nematoda: Tylenchidae) from Iran
FIGURE 4. Bayesian tree inferred using sequences D2–D3 region of the LSU rDNA gene. Posterior probabilities (pp) exceeding 0.5 are given on appropriate clades, bifurcations with pp above 0.95 are considered to be well-supported. Nematode species and GenBank accession numbers are listed for each taxon. Newly generated D2–D3 LSU rDNA sequences are in bold.
FIGURE 1 in Morphological and molecular characterisation of Discotylenchus lorestanensis sp. n. (Nematoda: Tylenchidae) from Iran
FIGURE 1. Photomicrographs of Discotylenchus lorestanensis sp. n. Female (A–D, F–I, K, L) and male (E, J). A: Pharyngeal region; B: Head and stylet; C: Amphid; D: PUS; E: Male posterior end; F: Female tail; G: Entire body; H: Cross section of female showing lateral field; I: Lateral field; J: Bursa; K: spermatheca; L: tail terminus (all scale bars = 10 µm). (A: anus; B: bursa; L.L: lateral line; PUS: post-vulval uterine sac; S: spermatheca; V: vulva).
FIGURE 3 in Morphological and molecular characterisation of Discotylenchus lorestanensis sp. n. (Nematoda: Tylenchidae) from Iran
FIGURE 3. Line drawings of Discotylenchus lorestanensis sp. n. male. A: Entire body; B: Head and stylet; C: Pharynx; D, E: Tail and spicule; Head and stylet; F: Cross section at mid-body.
FIGURE 2 in Morphological and molecular characterisation of Discotylenchus lorestanensis sp. n. (Nematoda: Tylenchidae) from Iran
FIGURE 2. Line drawings of Discotylenchus lorestanensis sp. n. female. A, B: Pharynx; C, D: Head and stylet; E: Entire body; F: Lateral field; G: PUS; H–J: tail; K: Cross section at mid-body.
FIGURE 5 in Morphological and molecular characterisation of Discotylenchus lorestanensis sp. n. (Nematoda: Tylenchidae) from Iran
FIGURE 5. Bayesian tree inferred from SSU rDNA sequences. Posterior probabilities (pp) exceeding 0.5 are given on appropriate clades, bifurcations with pp above 0.95 are considered to be well-supported. Nematode species and GenBank accession numbers are listed for each taxon. Newly generated SSU rDNA sequences are in bold.
FIGURE 1. Basiria birjandiensis n in Description of Basiria birjandiensis n. sp (Nematoda: Tylenchidae) from South Khorasan province with a checklist of the family Tylenchidae Örley 1880 from Iran
FIGURE 1. Basiria birjandiensis n. sp: Anterior end of the body (A), Lip region with amphid (B, C), Excretory pore position (D, E), Body shape of the female (F) and male (H), lateral lines (G), tail end of the female (J) and male (I) and ovary (K).
FIGURE 1 in Observations on MaleNChus geraerti n. sp. (Rhabditida: Tylenchidae), a morphological and molecular phylogenetic study
FIGURE 1. Line drawings of Malenchus geraerti n. sp. A&B: Female and male entire body, C: Female reproductive system, D&E: Details of anterior end (E: Showing the lateral field origin), F: Cuticle surface, G: Male posterior body region, H: Pharynx of female.
FIGURE 5. Bayesian 50 in Observations on MaleNChus geraerti n. sp. (Rhabditida: Tylenchidae), a morphological and molecular phylogenetic study
FIGURE 5. Bayesian 50% majority rule consensus tree including Malenchus geraerti n. sp. inferred from LSU rDNA D2/D3 under the GTR+G+I model. Bayesian posterior probabilities and maximum likelihood bootstrap values more than 50% are given for appropriate clades in the shape BPP/ML BS. The new species is in bold.
FIGURE 4. Bayesian 50 in Observations on MaleNChus geraerti n. sp. (Rhabditida: Tylenchidae), a morphological and molecular phylogenetic study
FIGURE 4. Bayesian 50% majority rule consensus tree including Malenchus geraerti n. sp. inferred from SSU rDNA under the GTR+G+I model. Bayesian posterior probabilities and maximum likelihood bootstrap values more than 50% are given for appropriate clades in the shape BPP/ML BS. The new species is in bold.
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