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99 results for “Tylenchidae”
FIGURE 2 in Observations on MaleNChus geraerti n. sp. (Rhabditida: Tylenchidae), a morphological and molecular phylogenetic study
FIGURE 2. Microphotographs of Malenchus geraerti n. sp. A-D: Details of anterior end (A: Stylet and DGO, B: Beginning of lateral line, C: Amphidial opening, D: Lip region annuli), E&F: Pharyngeal bulb region and variation in position of excretory pore, G: Lateral line of female at mid-body, H: Bursa, I-K: Parts of female reproductive system (I: Vulva and filled spermatheca, J: Empty spermatheca, K: Vulva region), L: Female tail, M: Male cloacal region and spicules. (Scale bars = 10 µm.)
FIGURE 3 in Observations on MaleNChus geraerti n. sp. (Rhabditida: Tylenchidae), a morphological and molecular phylogenetic study
FIGURE 3. Microphotographs of Malenchus geraerti n. sp. A: Amphidial opening, B: Cross section of female, showing lateral band and constriction at its junction with the body (arrows), C: Vulva in ventral view and epiptygma, D&E: Median bulb and its valve, F: Dorso-lateral view of vulval slit, showing dikes or vulval flap is absent (Scale bars = 10 µm.)
FIGURE 5 in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 5. Light microphotographs of Iranian population of Labrys chinensis Qing & Bert, 2018. A: Female pharyngeal region; B: Female reproductive system; C: Female cephalic region; D: Female, longitudinal amphidial aperture; E: Male cloacal region; F; Female tail terminus; G: Male spicule and gubernaculum; H: Female lateral field at mid-body. (Scale bars = 10 µm).
FIGURE 2 in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 2. Light microphotographs of Discotylenchus biannulatus n. sp. Female. A: Pharyngeal region; B: Reproductive system; C&D: Lip region; E: Corpus region; F: Tail terminus; G: Lateral field at mid-body. (Scale bars = 10 µm).
FIGURE 4 in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 4. Iranian population of Labrys chinensis Qing & Bert, 2018. A: Entire female; B: Entire male; C: Female, pharyngeal region; D: Female, reproductive system; E: Female, cephalic region; F: Female, lateral field at mid-body; G: Male tail; H&I: Female tail.
FIGURE 1. Discotylenchus biannulatus n in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 1. Discotylenchus biannulatus n. sp. Female. A&B: Pharyngeal region; C: Lip region; D: Entire body; E: Reproductive system; F&G: Tail; H: Lateral field at mid-body.
FIGURE 3 in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 3. Scanning electronic microscopy of Discotylenchus biannulatus n. sp. A: Lip region; B: En face view of lip region showing perioral disc; C: Lip region showing longitudinal amphidial aperture and head annuli; D&E: Details of anterior end showing head shape and body annuli; F: Four incisures in lateral field at mid-body; G: Lateral view of anus region; H: Lateral view of vulva. (Scale bars: A–C = 0.5 µm; D, G = 2 µm; E = 5 µm; F, H = 1 µm).
FIGURE 6 in Two rare species of tylenchids, Discotylenchus biannulatus n. sp. and Labrys chinensis Qing & Bert, 2018 (Nematoda: Tylenchidae) from western Iran
FIGURE 6. Scanning electronic microscopy of Iranian population of Labrys chinensis Qing & Bert, 2018. A, B&C: Cephalic region showing amphidial openings, oral plate and disc-like structure; D: Distal region of tail; E: Disc like structure on head; F: Lateral view of vulva region; G: Lateral view of anus; H: Showing two incisures in lateral field at mid-body; I: Tail terminus. (Scale bars: A–C, E = 1 µm; D = 10 µm; F, H, I = 2 µm; G = 5 µm).
FIGURE 3 in Morphological and molecular characterization of Hemicycliophora subbotini n. sp. (Tylenchida: Hemicycliophoridae) from China
FIGURE 3. Scanning electron micrographs of Hemicycliophora subbotini n. sp. female. A: Entire body; B–D: En face view of lip region; E: Vulval region; F, G: Posterior region, arrows showing position of vulva (v) and anus (a); H: Female tail arrow showing the position of anus I: Lateral field. (Scale bars: A = 250 µm; B–D: 5 µm; E = 15 µm; F, G, I: 25 µm; H: 20 µm.)
FIGURE 2 in Morphological and molecular characterization of Hemicycliophora subbotini n. sp. (Tylenchida: Hemicycliophoridae) from China
FIGURE 2. Light photomicrographs of Hemicycliophora subbotini n. sp. Female. A: Entire body; B, C Pharyngeal region, arrows showing position of base of pharyngeal bulb and excretory pore; D: Posterior region, arrows showing position of vulva and anus; E, F: Stylet basal knobs; G, H: Vulval regions; I: Lateral field; J–L: Female tails arrows showing position of anus. (Scale bars: A, D = 40 µm, B, C = 20 µm, E–L= 10 µm.)
FIGURE 1 in Morphological and molecular characterization of Hemicycliophora subbotini n. sp. (Tylenchida: Hemicycliophoridae) from China
FIGURE 1. Line drawings of Hemicycliophora subbotini n. sp. Female. A: Pharyngeal region; B–D: Various lip regions; E–G: En face view of lip region; H: SEM Vulval region; I: SEM Lateral field; J: Reproductive system; K, L: Vulval region; M, N: Stylet basal knobs; M: SEM Posterior region showing vulva and anus; P–R: Female tails. (Scale bars: A = 20 µm, B–D, E–G, K–N, P–R = 10 µm, H, I = 30 µm, O = 50 µm.)
FIGURE 4 in Morphological and molecular characterization of Hemicycliophora subbotini n. sp. (Tylenchida: Hemicycliophoridae) from China
FIGURE 4. Phylogenetic relationships of Hemicycliophora subbotini n. sp. Bayesian 50% majority rule consensus tree as inferred from D2 and D3 expansion segments of 28S rRNA sequence alignment under a transitional of invariable sites with invariable sites and a gamma-shaped distribution model (TIM3 + I + G). Posterior probabilities greater than 0.70 are given for appropriate clades. Newly obtained sequences in this study are shown in bold. Scale bar = expected changes per site.
FIGURE 5 in Morphological and molecular characterization of Hemicycliophora subbotini n. sp. (Tylenchida: Hemicycliophoridae) from China
FIGURE 5. Phylogenetic relationships of Hemicycliophora subbotini n. sp. Bayesian 50% majority rule consensus tree as inferred from ITS rRNA sequence alignment under a transitional of invariable sites with invariable sites and a gamma-shaped distribution model (TIM2 + I + G). Posterior probabilities greater than 0.70 are given for appropriate clades. Newly obtained sequences in this study are shown in bold. Scale bar = expected changes per site.
FIGURE 1. Basiria khouzestanensis n in Description of Basiria khouzestanensis n. sp. (Nematoda: Tylenchidae) from Iran and its phylogenetic relationships with other species in the family
FIGURE 1. Basiria khouzestanensis n. sp. A: Entire female, B: Female pharyngeal region, C: Female reproductive system, D: Lateral field at mid-body, E&F: Female tail, G: Male tail, H: Entire male.
FIGURE 2. Basiria khouzestanensis n in Description of Basiria khouzestanensis n. sp. (Nematoda: Tylenchidae) from Iran and its phylogenetic relationships with other species in the family
FIGURE 2. Basiria khouzestanensis n. sp. A&B: Female pharyngeal region, C: Lateral field at mid-body, D: Female reproductive system, E&F: Female tail, G&H: Male tail. (Scale bars = 20 µm.)
FIGURE 3. Bayesian 50 in Description of Basiria khouzestanensis n. sp. (Nematoda: Tylenchidae) from Iran and its phylogenetic relationships with other species in the family
FIGURE 3. Bayesian 50% majority rule consensus tree inferred from analysis of the D2–D3 domains of the 28S rRNA gene under the GTR+G+I model. Bayesian posterior probability values more than 50% are given for appropriate clades. The new species is in bold.
FIGURE 1. Labrys khuzestanensis n in Labrys khuzestanensis n. sp. (Nematoda, Tylenchidae), a new member of the genus with large labial plate
FIGURE 1. Labrys khuzestanensis n. sp. (line drawing, female). A: Entire body; B: Anterior region; C: Amphidial opening; D, E: Neck (stoma + pharynx); F: Cuticular annuli at mid-body; G: Reproductive system; H, I: Tail.
FIGURE 2. Labrys khuzestanensis n in Labrys khuzestanensis n. sp. (Nematoda, Tylenchidae), a new member of the genus with large labial plate
FIGURE 2. Labrys khuzestanensis n. sp. (light microscopy, female). A: Pharyngeal region; B: Reproductive system; C: Part of neck; D: Anterior region; E: Amphidial opening; F: Cuticular annuli at mid-body; G: Distal part of tail showing its tip; H: Excretory pore; I: Vulva region. All scale bars =10 µm.
FIGURE 4. Bayesian 50 in Labrys khuzestanensis n. sp. (Nematoda, Tylenchidae), a new member of the genus with large labial plate
FIGURE 4. Bayesian 50% majority rule consensus tree inferred using SSU rDNA of Labrys khuzestanensis n. sp. under the GTR+G+I model. Bayesian posterior probabilities and maximum likelihood bootstrap values are given for appropriate clades in the shape BPP/ML BS. The newly obtained sequence is in bold font.
FIGURE 3. Labrys khuzestanensis n in Labrys khuzestanensis n. sp. (Nematoda, Tylenchidae), a new member of the genus with large labial plate
FIGURE 3. Labrys khuzestanensis n. sp. (scanning electron microscopy, female). A: Anterior region; B–D: Cephalic region in dorsal, lateral and frontal views, respectively; E, I: Excretory pore in ventral and sublateral view, respectively; F: Tail; G, H: Vulva in ventral and lateral view, respectively; J: Lateral field; K: Cuticular annuli at mid-body; L: Anus.
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International Brain Laboratory public data
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OpenNeuro
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