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62 results for “allotype”
FIGURES 11 12. Elephantomyia primogenia Alexander. Allotype, female. 11. Wing. 12 in A review of the genus Elephantomyia Osten Sacken in Brazil, with description of two new species (Diptera: Tipulomorpha, Limoniidae)
FIGURES 11 12. Elephantomyia primogenia Alexander. Allotype, female. 11. Wing. 12. Terminalia, dorsolateral view. Abbreviations; cerc, cercus; hyp vlv, hypogynial valve; tg 8, tergite 8; tg 9, tergite 9; tg 10, tergite 10.
Fig.ç16.A mblyops sagamiensis sp. nov., A–E, I, allotype, male (NSMT-Cr 21362); F, H, holotype, female (NSMT-Cr 21361); G, J, paratype, female with partially developed marsupium (NSMT-Cr 21363). A, third pleopod (le); B, fourth pleopod (le); C, pseudobranchial lobe on the same limb (le); D, distal part of exopod of the same limb (le), E, h pleopod (right), F, G, uropod and telson (dorsal); H, I, proximal part of uropodal endopod (le, ventral); J, posterior part of telson (dorsal). in The Genus Amblyops (Crustacea: Mysida: Mysidae: Erythropinae) from East Asia and Australia, with Descriptions of Ten New Species
Fig.ç16.A mblyops sagamiensis sp. nov., A–E, I, allotype, male (NSMT-Cr 21362); F, H, holotype, female (NSMT-Cr 21361); G, J, paratype, female with partially developed marsupium (NSMT-Cr 21363). A, third pleopod (le); B, fourth pleopod (le); C, pseudobranchial lobe on the same limb (le); D, distal part of exopod of the same limb (le), E, h pleopod (right), F, G, uropod and telson (dorsal); H, I, proximal part of uropodal endopod (le, ventral); J, posterior part of telson (dorsal).
Fig.ç15.A mblyops sagamiensis sp. nov., A–E, holotype, female (NSMT-Cr 21361); F, allotype, male (NSMT-Cr 21362). A, second thoracopod (le); B, third thoracopod (le); C, distal part of third thoracopodal endopod (le); D, sixth thoracopod (le); E, eighth thoracopodal endopod with oostegite (le); F, pair of genital organs and sternal process. in The Genus Amblyops (Crustacea: Mysida: Mysidae: Erythropinae) from East Asia and Australia, with Descriptions of Ten New Species
Fig.ç15.A mblyops sagamiensis sp. nov., A–E, holotype, female (NSMT-Cr 21361); F, allotype, male (NSMT-Cr 21362). A, second thoracopod (le); B, third thoracopod (le); C, distal part of third thoracopodal endopod (le); D, sixth thoracopod (le); E, eighth thoracopodal endopod with oostegite (le); F, pair of genital organs and sternal process.
Figures 25–31. Pindamoraria boraceiae, female allotype. Fig. 25 in Pindamoraria boraceiae, a new genus and species of freshwater Canthocamptidae (Copepoda, Harpacticoida) from Brazil
Figures 25–31. Pindamoraria boraceiae, female allotype. Fig. 25. Genital double-somite, ventral view. Fig. 26. Caudal ramus, ventral view. Fig. 27. Antennule. Fig. 28. Antennal exopodite. Fig. 29. Maxilla. Fig. 30. Maxilliped. Fig. 31. Leg 5. Scales as indicated in figure.
Figures 32–35. Pindamoraria boraceiae, female allotype. Fig. 32. Right leg 2 endopodite, frontal view. Fig. 33. Left leg 3 endopodite, frontal view. Fig. 34. Left leg 4 endopodite, frontal view. Fig. 35. Right leg 4 in Pindamoraria boraceiae, a new genus and species of freshwater Canthocamptidae (Copepoda, Harpacticoida) from Brazil
Figures 32–35. Pindamoraria boraceiae, female allotype. Fig. 32. Right leg 2 endopodite, frontal view. Fig. 33. Left leg 3 endopodite, frontal view. Fig. 34. Left leg 4 endopodite, frontal view. Fig. 35. Right leg 4 endopodite, caudal view. Scales as indicated in figure.
Fig.ç2.Ec hinoderes ohtsukai sp. nov., camera lucida drawings. A, B, Holotype, male (ZIHU 3976), entire animal, dorsal and ventral view, respectively; C, D, allotype, female (ZIHU 3977), segments 9–11, dorsal and ventral view, respectively. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; lts, lateral terminal spine; lvt, lateroventral tubule; mds, middorsal spine; ne, neck; ps, penile spine; rss, rounded sensory spot; si, sieve plate. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan
Fig.ç2.Ec hinoderes ohtsukai sp. nov., camera lucida drawings. A, B, Holotype, male (ZIHU 3976), entire animal, dorsal and ventral view, respectively; C, D, allotype, female (ZIHU 3977), segments 9–11, dorsal and ventral view, respectively. Abbreviations: dss, droplet-shaped sensory spot; gco1, glandular cell outlet type I; gco2, modi ed glandular cell outlet type II; ldt, laterodorsal tubule; lts, lateral terminal spine; lvt, lateroventral tubule; mds, middorsal spine; ne, neck; ps, penile spine; rss, rounded sensory spot; si, sieve plate.
Individual allotype responses to HEK-293T-based cell lines ex-pressing single MHC class I chain-related gene B alleles
<p><span>Figure S1.</span><span> Individual allotype responses between 64 sera collected from kidney transplant patients and 5 single </span><span>MICB</span><span> allele-expressing cell lines established in </span><span>HLA</span><span> class I, </span><span>MICA,</span><span> and </span><span>MICB</span><span>-null HEK-293T cells. </span><span>HLA</span><span> class I, </span><span>MICA,</span><span> and </span><span>MICB</span><span> genes were removed using CRISPR/Cas9 in previous studies [20, 21]. Some of the 64 sera showed responses to single </span><span>MICA</span><span> allele-expressing cell lines [21]. However, none of the 64 sera showed individual allotype responses in this study.</span></p>
Figure 6. Gammarus komareki aznavensis subsp. nov., allotype female. A, pereopod 6 in Gammarus komareki aznavensis subsp. nov., a new amphipod subspecies from Iran (Amphipoda: Gammaridae)
Figure 6. Gammarus komareki aznavensis subsp. nov., allotype female. A, pereopod 6; B, pereopod 7; C, urosomites and epimeral plates; D, uropod 2; E, uropod 1; F, telson.
Figure 5. Gammarus komareki aznavensis subsp. nov., allotype female. A, antenna 1 in Gammarus komareki aznavensis subsp. nov., a new amphipod subspecies from Iran (Amphipoda: Gammaridae)
Figure 5. Gammarus komareki aznavensis subsp. nov., allotype female. A, antenna 1; B, antenna 2; C, gnathopod 1; D, detail of gnathopod 1; E, detail of gnathopod 2; F, gnathopod 2; G, pereopod 3; H, uropod 3; I, pereopod 4; J, pereopod 5.
CALLIRHIPIS (PARE.NNOMETF.S) ONO/ BLAIR: A. FEMALE ALLOTYPE; B, MALE; C, SIDE VIEW OF MATURE LARVA; D, DORSAL VIEW OF CAUDAL END OF LARVA. in Rhipiceridae Of Guam
CALLIRHIPIS (PARE.NNOMETF.S) ONO/ BLAIR: A. FEMALE ALLOTYPE; B, MALE; C, SIDE VIEW OF MATURE LARVA; D, DORSAL VIEW OF CAUDAL END OF LARVA.
Figure 1-4. Speyeria atlantis greyi holotype and allotype with associated labels. 1-2 in Nomenclatural faux pas for Speyeria atlantis greyi Moeck, 1950 (Lepidoptera: Nymphalidae)
Figure 1-4. Speyeria atlantis greyi holotype and allotype with associated labels. 1-2) Holotype, dorsal and ventral view. 3-4) Allotype, dorsal and ventral view. Both specimens American Museum of Natural History, New York. Images by James C. Dunford.
Pl. I. — A, Koma bombifrons (Karsch), ¿J de Gédi, Kénya B, Koma umbroza n. sp., holotype ¿J C, Koma umbrosa, var. camusa n. var., allotype ç; D, Koma intermedia n. sp., holotype ¿J E, Platypleura pinheyi n. sp., holotype TODO F, Monomatapa mataposa n. sp., TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO in Cicadoidea nouveaux de l'Afrique sud-orientale [Hom.]
Pl. I. — A, Koma bombifrons (Karsch), ¿J de Gédi, Kénya B, Koma umbroza n. sp., holotype ¿J C, Koma umbrosa, var. camusa n. var., allotype ç; D, Koma intermedia n. sp., holotype ¿J E, Platypleura pinheyi n. sp., holotype TODO F, Monomatapa mataposa n. sp., TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO TODO
Fig. 17. Zentamyia nigracinctus (Roberts, 1929), ♀ allotype (ANIC No. 29-009842): (a) dorsal; (b) lateral; (c) head, dorsal; (d) head, lateral; (e) wing; (f ) head, frontal; (g) head, profile. Scale bars = 1 mm. This figure is published in colour in the online edition of this journal, which can be accessed via http://booksandjournals.brillonline.com/content/journals/1876312x.
Fig. 17. Zentamyia nigracinctus (Roberts, 1929), ♀ allotype (ANIC No. 29-009842): (a) dorsal; (b) lateral; (c) head, dorsal; (d) head, lateral; (e) wing; (f ) head, frontal; (g) head, profile. Scale bars = 1 mm. This figure is published in colour in the online edition of this journal, which can be accessed via http://booksandjournals.brillonline.com/content/journals/1876312x.
KIR3DL1 allotype binding to HLA by Luminex (W632 nomalised values).
<p>HLA-I recognition by KIR3DL1 allotypes was assessed through binding of KIR3DL1 tetramers to beads coated with a panel of 100 different HLA-A, -B, and -C molecules (LABScreen HLA Class I Single Antigen; One Lambda). PE-conjugated KIR3DL1 tetramer (5 µg per test) was incubated with beads for 30 min at room temperature in the dark in 300 mM of phosphate-buffered NaCl (PBS-300) with 5% fetal calf serum (AusGeneX). The beads were then washed three times in PBS-300 with 0.05% Tween 20 and resuspended in PBS-300. Binding was measured on a Luminex platform (LABScan 100; One Lambda) through identification of the individual HLA allotypes via unique bead labeling and detection of tetramer fluorescence intensity on each bead set. Normalized fluorescence values for analysis were obtained using the HLA Fusion software suite (One Lambda) that subtracted background values using the following formula:</p> <p>(<em>S</em>#<em>N</em> − <em>S</em><em>N</em><em>C</em> <em>b</em><em>e</em><em>a</em><em>d</em>) − (<em>B</em><em>G</em>#<em>N</em> − <em>B</em><em>G</em><em>N</em><em>C</em> <em>b</em><em>e</em><em>a</em><em>d</em>), </p> <p>where <em>S</em>#<em>N</em> is the sample-specific fluorescence value (trimmed mean) for bead #<em>N</em>, <em>SNC bead</em> is the sample-specific fluorescence value for the negative control (nude) bead, <em>BG</em>#<em>N</em> is the background negative control fluorescence value for bead #<em>N</em>, and <em>BGNC bead</em> is the background negative control fluorescence value for negative control bead. To obtain binding values for each HLA-I, mean fluorescence intensity (MFI) values for an isotype control (a PE-conjugated IgG) were subtracted from the raw values obtained for each experiment, and recognition was assessed as being higher than that of the tetramer to beads without conjugated HLA-I. MFI values were normalized to the highest value for each experiment and also provided averaged over three experiments.</p>
Data for: Endo-lysosomal assembly variations among Human Leukocyte Antigen class I (HLA-I) allotypes
<p>The extreme polymorphisms of HLA-I proteins enable the presentation of diverse peptides to cytotoxic T lymphocytes (CTL). The canonical endoplasmic reticulum (ER) HLA-I assembly pathway enables presentation of cytosolic peptides, but effective intracellular surveillance requires multi-compartmental antigen sampling. Endo-lysosomes are generally sites of HLA class II assembly, but human monocytes and monocyte-derived dendritic cells (moDCs) also contain significant reserves of endo-lysosomal HLA-I molecules. We hypothesized variable influences of HLA-I polymorphisms upon outcomes of endo-lysosomal trafficking, as the stabilities and peptide occupancies of cell surface HLA-I are variable. Consistent with this model, when the endo-lysosomal pH of moDCs is disrupted, HLA-B allotypes display varying propensities for reductions in surface expression, with HLA-B*08:01 or HLA-B*35:01 being among the most resistant or sensitive respectively, among eight tested HLA-B allotypes. Perturbations of moDC endo-lysosomal pH result in redistribution of HLA-B*35:01, but not HLA-B*08:01, to LAMP1+ compartments and increase HLA-B*35:01 peptide receptivity. These findings reveal the intersection of the vacuolar cross-presentation pathway with a constitutive assembly pathway for some HLA-B allotypes. Notably, cross-presentation of epitopes derived from two soluble antigens was also more efficient for B*35:01 compared to B*08:01, even when matched for T cell response sensitivity, and more affected by cathepsin inhibition. Thus, HLA-I polymorphisms dictate the degree of endo-lysosomal assembly, which can supplement ER assembly for constitutive HLA-I expression and increase the efficiency of cross-presentation.</p>
Data for: Endo-lysosomal assembly variations among Human Leukocyte Antigen class I (HLA-I) allotypes
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FIGURES 20–24. Bezzia spicata. Male allotype, 20 in A Revision of the Nearctic Predaceous Midges in the Bezzia (Bezzia) pulverea complex (Diptera: Ceratopogonidae)
FIGURES 20–24. Bezzia spicata. Male allotype, 20 Genitalia at focal level of parameres, gonocoxites and gonostyli. Female 21–24. 21 Thorax and legs. 22 Hind tibial spines. 23 Abdominal segments 7–10 and spermathecae. 24 Abdominal segments 8–10 with posteriorly folded anterior prongs of segment 9.
FIGURE 136. Allotype female S. sanfelipe showing left rear leg 2 outer and 4 in Generic relationships of New World Jerusalem crickets (Orthoptera: Stenopelmatoidea:Stenopelmatinae), including all known species of Stenopelmatus
FIGURE 136. Allotype female S. sanfelipe showing left rear leg 2 outer and 4 inner tibial spines (left photo) and face (right photo) with no furrow.
FIGURE 141. Allotype female S in Generic relationships of New World Jerusalem crickets (Orthoptera: Stenopelmatoidea:Stenopelmatinae), including all known species of Stenopelmatus
FIGURE 141. Allotype female S. sanfelipe (far left), holotype male S. sanfelipe (middle), and La Esperanza adult male S. piceiventris (far right) showing size differences between the 2 species, when at similar elevations around Oaxaca, Mexico.
FIGURE 137. Allotype adult female S in Generic relationships of New World Jerusalem crickets (Orthoptera: Stenopelmatoidea:Stenopelmatinae), including all known species of Stenopelmatus
FIGURE 137. Allotype adult female S. sanfelipe ovipositor (left photo) and her fore wing (arrow, right photo).
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