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145 results for “Brevis”
Fig. 8 in Analysis of major sperm proteins in two nematode species from two classes, Enoplus brevis (Enoplea, Enoplida) and Panagrellus redivivus (Chromadorea, Rhabditida), reveals similar localization, but less homology of protein sequences than expected for Nematoda phylum
Fig. 8 Putative MSPs those are most similar to peptide antigen. a P. redivivus MSPs aligned with peptide antigen. Protein sequences (Pan_g61.t1, Pan_g6018.t1, Pan_g6424.t1, Pan_g9068.t1, Pan_ g19433.t1, and Pan_g21178.t1) were found by Blast using peptide
Fig. 4 in Analysis of major sperm proteins in two nematode species from two classes, Enoplus brevis (Enoplea, Enoplida) and Panagrellus redivivus (Chromadorea, Rhabditida), reveals similar localization, but less homology of protein sequences than expected for Nematoda phylum
Fig. 4 Immunolocalization of MSP in P. redivivus sperm. a Immature spermatozoa extracted from male. MSP localizes in granules. In some cells, MSP has strongest signals in the periphery (arrowheads) (scale bar 10 µm). b Chain of mature spermatozoa extracted from female.
FIGURES 63–71. Chaetoceros brevis. Figs 63–64, 67–71 in The planktonic diatom genus Chaetoceros Ehrenberg (Bacillariophyta) from the Adriatic Sea
FIGURES 63–71. Chaetoceros brevis. Figs 63–64, 67–71: culture material, strain PMFB1. Figs 65–66: field material. Figs 63–65: LM. Figs 66, 68: SEM. Figs 67, 69–71: TEM. 63) A complete chain. 64) Middle part of a chain showing single plate-like chloroplasts and peanut-shaped apertures. 65) Terminal part of a chain with plastid-like material within the setae. 66) Resting spore still covered with the remains of the girdle bands from the parent cell. Primary valve ornamented with numerous thin filamentous spines. 67) Detail of the valve with externally flattened tube of the rimoportula. 68) Internal view of the terminal valve showing the slit-shaped rimoportula (arrow) and silica projections extending from the marginal ridge (arrowheads). 69) Intercalary valve face showing central annulus and radially arranged parallel costae. Note the darker area in the central part of the valve. 70) Part of a girdle with bands ornamented with transverse costae. Note the connecting band with marked undulation. 71) Detail of a seta. Scale bars: 63= 20 μm; 64–65=10 μm; 66, 68–69=5 μm; 67, 70–71=1 μm.
FIGURE 3 in A case of taxonomic inflation in coccoid algae: Ellipsoidion parvum and Neocystis vischeri are conspecific with Neocystis (=Nephrodiella) brevis (Chlorophyta, Trebouxiophyceae)
FIGURE 3: Representative images of Neocystis mucosa (A–C) and Neocystis brevis (D–I) strains. A: CAUP D 801. B: KR 1989/14. C: SAG 40.88. D: CAUP D 802. E: ASIB BS 319. F: CCALA 393. G: CALA 341. H, I: SAG 40.86. Scale bar = 10 µm.
FIGURE 1 in A case of taxonomic inflation in coccoid algae: Ellipsoidion parvum and Neocystis vischeri are conspecific with Neocystis (=Nephrodiella) brevis (Chlorophyta, Trebouxiophyceae)
FIGURE 1: Comparison of the ITS2 sequences and predicted secondary structures of Neocystis brevis and Neocystis mucosa. Base numbering is indicated every 10 bases, and the four helices are numbered with Roman numerals. The structure shown corresponds to N. brevis; positions conserved in N. mucosa are portrayed in green, bases substituted in N. mucosa are shown by the structure and connected to the respective position by a short line, insertions and deletions are indicated with plus and minus symbols, respectively. The base pair marked in a grey box is a compensatory base change (CBC). The highly conserved U–U mismatch in the helix II and UGGU motif in the helix III (Schultz et al. 2005) are marked by arrows.
FIGURE 4 in A case of taxonomic inflation in coccoid algae: Ellipsoidion parvum and Neocystis vischeri are conspecific with Neocystis (=Nephrodiella) brevis (Chlorophyta, Trebouxiophyceae)
FIGURE 4: Unit-less centroid size values of strains of Neocystis spp. Boxplots with a full outline represent strains of N. mucosa. Boxplots with a dashed outline represent strains of N. brevis.
FIGURE 2 in A case of taxonomic inflation in coccoid algae: Ellipsoidion parvum and Neocystis vischeri are conspecific with Neocystis (=Nephrodiella) brevis (Chlorophyta, Trebouxiophyceae)
FIGURE 2: Morphometric characteristics of Neocystis strains. a) Visualisation of the multivariate regression model illustrating the relation of the shape and size of cells in the entire investigated dataset. b) The PCA ordination plot based on geometric morphometric data illustrating mean positions of individual strains and their standard deviations on PC1 (spanning 65.9% of the variation) and PC2 (23.2%). The theoretical cell shapes of marginal morphospace positions were reconstructed from the landmark coordinates of the original data.
FIGURE 76. Mortelmansia brevis Fain, 1959, female. A in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 76. Mortelmansia brevis Fain, 1959, female. A, dorsal view; B, ventral view; C, gnathosoma in dorsal view; D, same in ventral view. Scale bars: 100 µm (A, B), 25 µm (C, D).
FIGURE 77. Mortelmansia brevis Fain, 1959, male. A in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 77. Mortelmansia brevis Fain, 1959, male. A, dorsal view; B, opisthosoma in ventral view; C, aedeagus. Scale bars: 100 µm (A, B), 25 µm (C).
FIGURES 117–120. Ypsiloncyphon brevis, n in Australian Marsh Beetles (Coleoptera: Scirtidae). 6. Genera Calvarium Pic, Papuacyphon Zwick, and Ypsiloncyphon Klausnitzer
FIGURES 117–120. Ypsiloncyphon brevis, n. sp.: 117, male S9; 118, penis, dorsal (Sth. Pine R.); 119, female terminal segments with vulvar sclerite, apodemes of S8 black, expansions grey (Goldmine & Davies Cks); 120, dictyon. All to the same to scale.
Stabilometry Changes After Dry Needling in Flexor Digitoum Brevis
ClinicalTrials.gov study NCT04599322. IPD Sharing: NO. Countries: 1. Publications: 5.
Levilactobacillus Brevis Oral Health
ClinicalTrials.gov study NCT06457724. IPD Sharing: NO. Countries: 1. Publications: 1.
Stabilometry After Pressure Release of the Flexor Digitorum Brevis Muscle Versus a Non-emission Laser.
ClinicalTrials.gov study NCT06509347. IPD Sharing: NO. Countries: 1. Publications: 1.
Stabilometry and Plantar Pressures Changes After Dry Needling in Flexor Digitoum Brevis.
ClinicalTrials.gov study NCT04222946. IPD Sharing: NO. Countries: 1. Publications: 5.
L Brevis for Traumatic Oral Lesions in Orthodontic Patients
ClinicalTrials.gov study NCT04398511. IPD Sharing: NO. Countries: 1. Publications: 11.
Comparison of the Functional Outcome of Site Peroneus Longus Graft Donors With and Without Distal Stump Suturing of Peroneus Tendon Brevis on ACL Reconstruction Case in Cipto Mangunkusumo Hospital in
ClinicalTrials.gov study NCT04431063. IPD Sharing: UNDECIDED. Countries: 1. Publications: 31.
Survival of workers and queens of the ant Temnothorax nylanderi depending on infection with the cestode Anomotaenia brevis
Open the record for dataset details and reuse information.
Fig. 14. Paraclevelandia brevis Kidder, 1937. Thai I in Morphological versus molecular delimitation of ciliate species: a case study of the family Clevelandellidae (Protista, Ciliophora, Armophorea)
Fig. 14. Paraclevelandia brevis Kidder, 1937. Thai I specimens (A–C, F–G) isolated from Panesthia angustipennis angustipennis (Illiger, 1801) and Vietnamese specimens (D–E) isolated from Panesthia angustipennis cognata Bey-Bienko, 1969 from life (A–C) and after protargol impregnation (D–G). A. Ventral overview, showing the general body organization. Arrows mark the proximal end of the peristomial opening, black arrowheads denote the proximal end of the adoral zone of membranelles, white arrowheads denote the karyophore attached to the anterior body pole. B–C. Ciliary pattern of ventral and dorsal sides. Asterisks mark the position of the ciliary whorl (posterior suture). D–G. Ventral views of specimens with well-preserved body shape. Scale bars = 20 μm.
Fig. 13. Paraclevelandia brevis Kidder, 1937. Thai I in Morphological versus molecular delimitation of ciliate species: a case study of the family Clevelandellidae (Protista, Ciliophora, Armophorea)
Fig. 13. Paraclevelandia brevis Kidder, 1937. Thai I specimens isolated from Panesthia angustipennis angustipennis (Illiger, 1801) after protargol impregnation. A–J. Variability of body shape and size as well as of the nuclear (shaded grey) and oral (shaded yellow) apparatus. Scale bar = 20 μm.
Fig. 12. Paraclevelandia brevis Kidder, 1937 in Morphological versus molecular delimitation of ciliate species: a case study of the family Clevelandellidae (Protista, Ciliophora, Armophorea)
Fig. 12. Paraclevelandia brevis Kidder, 1937. Vietnamese specimens isolated from Panesthia angustipennis cognata Bey-Bienko, 1969 from life (A) and after protargol impregnation (B–N). A. Ventral view of a representative specimen, length 50 μm. B–K. Variability of body shape and size as well as of the nuclear (shaded grey) and oral (shaded yellow) apparatus. L. Semi-schematic diagram, showing the general body organization. M–N. Ciliary pattern of ventral and dorsal sides. Arrow marks the right suture, black arrowheads indicate the position of the ciliary whorl (posterior suture). Scale bars = 20 μm.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.