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zenodo32/100

FIGURES 1–14 in A new species of Cymbella (Cymbellaceae, Bacillariophyceae) from China, possessing valves with both uniseriate and biseriate striae

FIGURES 1–14. Cymbella distalebiseriata sp. nov., LM. 1–14. Fourteen valves showing size diminution series. 3. Micrograph of holotype specimen. 5. Micrograph of isotype specimen. Scale bar =10 μm (in Fig. 1) for all figures.

opennotspecifiedMar 2018View details →
zenodo32/100

Figure 1 in Review of the Fridericia species (Oligochaeta: Enchytraeidae) possessing two spermathecal diverticula and description of a new species

Figure 1. Fridericia lacii sp. nov. (A) Oesophageal appendage, (B) coelomocytes, (C) sperm funnel, (D) nephridium, (E) spermatheca. Scale bar represents 50 Mm except in (B) where the line represents 25 Mm.

opennotspecifiedMay 2009View details →
zenodo32/100

Figure 3 in Review of the Fridericia species (Oligochaeta: Enchytraeidae) possessing two spermathecal diverticula and description of a new species

Figure 3. Fridericia lacii sp. nov. (A, B, F) Micrographs from stained whole mounts, (C–E) micrographs from living specimens. (A) Clitellar glands (dorsal view), (B) clitellar glands (ventrolateral view), male copulatory organs marked with white arrows, (C) sperm funnel (marked with white arrow), (D) segment XI, sperm funnels marked with white arrows, (E) spermatheca in segments IV–VI (lateral view), diverticula marked with black arrows, spermathecal duct marked with white arrow and ectal gland with black line, (F) spermathecae in segment V, diverticula marked with black arrows (on the left side, only one diverticulum visible), spermathecal ducts marked with white arrows and ectal gland with black line. Scale bar represents 50 Mm.

opennotspecifiedMay 2009View details →
zenodo32/100

Figure 2 in Review of the Fridericia species (Oligochaeta: Enchytraeidae) possessing two spermathecal diverticula and description of a new species

Figure 2. Fridericia lacii sp. nov. (A, B, E, H) Micrographs from stained whole mounts, (C, D) micrographs from living specimens. (A, E–G) Photographs from holotype. (A) Head (brain marked with arrow), (B) blood vessels in anterior segments, (C) chylus cells (marked with white arrows) in KX–KXII (sperm funnel marked with black arrow), (D) dorsal view of segments IV–VI with pharyngeal glands (marked with white arrows) and spermathecae (only the left clearly visible, marked with black arrow), (E) dorsal view of segments IV–VI: pharyngeal glands (marked with white arrows) with distinctly visible posterior projection (marked with black arrow), (F) the end of the deeper-stained gut cells in XIX, (G) intestine in XIII–XX: the deeper-stained part seen between the black arrows, (H) head with small papillae on prostomium (sensory organs?) (marked with black arrow). Scale bar represents 50 Mm except in (G) and (H) where lines represent 100 Mm.

opennotspecifiedMay 2009View details →
zenodo32/100

FIGURE 4 in Floral ontogeny of Magnolia (Magnoliaceae) species provides insights into floral evolution but does not possess taxonomic value at the genus level

FIGURE 4. Floral development of Magnolia figo. A. Floral primordium. B. Initiation of one tepal primordium in the first whorl. C. Initiation of tepal primordia in the second whorl. D. Initiation of stamen primordia, early stage. F. Initiation of stamen primordia later stage. G. Initiation of carpel primordia, early stage. H. Initiation of carpel primordia, later stage. I. Carpel primordia with developing concavities. Abbreviations: floral primordium (f); tepal in the first whorl (t 1); tepal in the second whorl (t 2); carpel (c); stamen (s). Scale bars: (A–F) = 100 μm; (G–I) = 200 μm.

opennotspecifiedFeb 2023View details →
zenodo32/100

FIGURE 3 in Floral ontogeny of Magnolia (Magnoliaceae) species provides insights into floral evolution but does not possess taxonomic value at the genus level

FIGURE 3. Floral development of Magnolia maudiae. A. Floral primordium. B. Initiation of tepal primordia in the first whorl. C. Initiation of tepal primordia in the second whorl, early stage. D. Initiation of tepal primordia in the second whorl, later stage. E. Initiation of tepal primordia in the third whorl. F. Initiation of stamen primordia, early stage. G. Initiation of stamen primordia, later stage. G. Stamens petaloid (arrow) at the early stage. H. Occasional variations in tepal primordia in the third whorl. J. Initiation of carpel primordia (early), occasional variations in tepal primordia in the first and third whorls, and petal-like stamens (arrow). K. Initiation of carpel primordia (end). L. Carpel primordia with developing concavities. Abbreviations: floral primordium (f); tepal in the first whorl (t); tepal in the second 1 whorl (t ); tepal in the third whorl (t ); carpel (c); stamen (s). Scale bars: (A, B) = 100 μm; (C–K) = 200 μm; L = 500 μm.

opennotspecifiedFeb 2023View details →
zenodo32/100

FIGURE 1 in Floral ontogeny of Magnolia (Magnoliaceae) species provides insights into floral evolution but does not possess taxonomic value at the genus level

FIGURE 1. Mature flowers of three Magnolia species. A. Magnolia liliiflora. B. Magnolia maudiae. C. Magnolia figo.

opennotspecifiedFeb 2023View details →
zenodo32/100

FIGURE 2 in Floral ontogeny of Magnolia (Magnoliaceae) species provides insights into floral evolution but does not possess taxonomic value at the genus level

FIGURE 2. Floral development of Magnolia liliiflora. A. Floral primordium. B. Initiation of tepal primordia in the outer whorl. C. Initiation of tepal primordia in the second whorl (early). D. Initiation of tepal primordia in the second whorl (later). E. Initiation of tepal primordia in the third whorl. F. Initiation of stamen primordium, early stage. G. Initiation of stamen primordium, later stage. H. Initiation of carpel primordia (early). I. Initiation of carpel primordia (end). Abbreviations: floral primordium (f); tepal in the first whorl (t 1); tepal in the second whorl (t 2); tepal in the third whorl (t 3); carpel (c); stamen (s). All scale bars: 200 μm

opennotspecifiedFeb 2023View details →
zenodo32/100

Dataset for Variation in nominal possessive expressions in Danish and Swedish

<p>Dataset for Variation in nominal possessive expressions in Danish and Swedish</p> <p><br> Alicja Piotrowska<br> https://orcid.org/0000-0002-9868-2964<br> Adam Mickiewicz University, Poznań, Poland<br> Al. Niepodległości 4, 61-874 Poznań</p> <p>alicja.piotrowska@amu.edu.pl</p>

opencc-by-4.0May 2023View details →
zenodo32/100

Fig. 7 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 7. The unrooted phylogenetic tree of the CYP74 family. Classified CYP74 subfamilies are marked with their letter designations (A, B, C, etc.). Subfamilies consisting of more than one member are outlined with unclosed curves (semi-ellipses). The following CYP74s were used for analysis: As, A. sativum; AsDES (CYP74H1), CAI30435.1; At, Arabidopsis thaliana; AtAOS (CYP74A1), NP199079.1; AtHPL (CYP74B2), C74B2ARATH; Ca, C. annuum; CaHPL (CYP74B1), NP001311810.1; CaDES (CYP74D4), NP001311513.1; Cas, Camellia sinensis; CasHPL (CYP74B24), BAU24783.1; Cs, Cucumis sativus; CsHPL/EAS/AOS (CYP74C31), XP004137005.1; CsHPL/EAS (CYP74C1_Cs), NP001274399.1; Cm, Cucumis melo; CmHPL/EAS (CYP74C2), NP001284390.1; Dc, Daucus carota; DcAOS (CYP74B33), XP_017248700.1; Gm, G. max; GmAOS (CYP74A1), NP001236432.1; GmHPL/EAS (CYP74C13_Gm), KRH29541.1; Hv, Hordeum vulgare, HvAOS2 (CYP74A3), CAB86384.1; Le, L. esculentum; LeAOS1 (CYP74A1), CAB88032.1; LeAOS2 (CYP74A2), AAF67141.1; LeAOS3 (CYP74C3), NP001265949.1; LeHPL (CYP74B3), AAF67142.1; LeDES (CYP74D1), NP001234527.1; Lu, L. usitatissimum; LuAOS (CYP74A1), sp|P48417.1; LuDES (CYP74B16), ADP03054.2; Mp, M. polymorpha, MpAOS1, BAS32647.1; MpAOS2, BAS32648.1; Mt, Medicago truncatula; MtHPL/EAS (CYP74C13_Mt), XP003606860.1; MtHPL3 (CYP74B4), AAY30368.1; Nt, N. tabacum; NtDES (CYP74D3), NP001312606.1; Os, Oryza sativa; OsAOS1 (CYP74A4), XP015631686.1; OsHPL2 (CYP74E1), EAY85033.1; Pa, Parthenium argentatum; PaAOS (CYP74A1), sp| Q40778.2; Pd, Prunus dulcis; PdHPL (CYP74C5), CAE18065.1; Pg, Psidium guajava; PgHPL (CYP74B5), AAK15070.1; Pi, Petunia inflata; PiCYP74C9, ABC75838.1; Pp, P. patens; PpAOS1 (CYP74A1), XP024380613.1; PpAOS2 (CYP74A8), XP024372097.1; PpHPL (CYP74G1), CAC86920.2; Ra, R. acris; RaDES (CYP74Q1), AJU57209.1; Rj, R. japonicus; RjEAS (CYP74A88), QCR70269.1; Sm, S. moellendorffii; SmDES1 (CYP74M1), XP002979266.1; SmDES2 (CYP74M3), XP002964012.2; SmEAS (CYP74M2), EFJ26024.1; St, S. tuberosum; StAOS2 (CYP74A6), ABD15175.1; StAOS3 (CYP74C10), CAI30876.1; StHPL/EAS (CYP74C4), XP006365486.1; StDES (CYP74D2), NP001305517.1; Zm, Zea mays; ZmAOS1 (CYP74A19), AAR33048.1; ZmHPL (CYP74F2), NP_001105255.2. The multiple alignments of selected CYP74 amino acid sequences and phylogenetic tree building were made with MEGA7 software. Multiple alignment was performed using the ClustalW method, phylogenetic tree was build using the maximum likelihood method based on the Poisson correction model (Zuckerkandl and Author- Anonymous, 1965); the bootstrap consensus tree was inferred from 1000 replicates (Felsenstein, 1985). The analysis involved 45 amino acid sequences.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 6 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 6. The mechanisms of fatty acid hydroperoxide conversions by target DESs. R = HOOC(CH2)7–, R' = n-butyl.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 4 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 4. GC-MS analyses of products (Me/TMS) of recombinant WT LuDES incubations with 9(S)-HPOD (A), 9(S)-HPOT (B), 13(S)-HPOD (C), and 13(S)- HPOT (D). 2, 9,10-epoxy-11-hydroxy-12-octadecenoic acid (Me/TMS); 3, 9- hydroxynonanoic acid (Me/TMS); 5, 9,10-epoxy-11-hydroxy-12,15-octadecadienoic acid (Me/TMS); 6, 11-hydroxy-12,13-epoxy-9-octadecenoic acid (Me/ TMS); 7, (ω5Z)-etherolenic acid (Me); 8, (9Z)-12-hydroxy-9-dodecenoic acid (Me/TMS); 9, (10E)-12-hydroxy-10-dodecenoic acid (Me/TMS); 10, 11-hydroxy-12,13-epoxy-9,15-octadecadienoic acid (Me/TMS); 12, 9-hydroxy- 12,13-epoxy-10-octadecenoic acid (Me/TMS); 13, 9,10-epoxy-13-hydroxy- 11,15-octadecadienoic acid (Me/TMS); 14, 9,10-epoxy-13-hydroxy-11-octadecenoic acid (Me/TMS). The structural formulae of products are presented in Fig. 2. 9-HOD/T and 13-HOD/T are decrypted in Fig. 3.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 3 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 3. GC-MS analyses of products (Me/TMS) of recombinant NtDES incubations with 9(S)-HPOD (A), 9(S)-HPOT (B), 13(S)-HPOD (C), and 13(S)- HPOT (D). 1, colneleic acid (Me); 2, 9,10-epoxy-11-hydroxy-12-octadecenoic acid (Me/TMS); 3, 9-hydroxynonanoic acid (Me/TMS); 4, colnelenic acid (Me); 4a, (3′E)-colnelenic acid (Me); 6, 11-hydroxy-12,13-epoxy-9-octadecenoic acid (Me/TMS). The structural formulae of products are presented in Fig. 2. 9-HOD, (9S,10E,12Z)-9-hydroxy-10,12-octadecadienoic acid; 9-HOT, (9S,10E,12Z,15Z)-9-hydroxy-10,12,15-octadecatrienoic acid; 13-HOD, (9Z,11E, 13S)-13-hydroxy-9,11-octadecadienoic acid; 13-HOT, (9Z,11E,13S,15Z)-13- hydroxy-9,11,15-octadecatrienoic acid.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 2 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 2. Structural formulae of reaction products of target WT enzymes and their mutant forms. 1, colneleic acid; 2, 9,10-epoxy-11-hydroxy-12-octadecenoic acid; 3, 9-hydroxynonanoic acid; 4, colnelenic acid; 4a, (3′E)-colnelenic acid; 5, 9,10-epoxy-11-hydroxy-12,15-octadecadienoic acid; 6, 11-hydroxy-12,13-epoxy-9-octadecenoic acid; 7, (ω5Z)-etherolenic acid; 8, (9Z)-12-hydroxy-9-dodecenoic acid; 9, (10E)-12-hydroxy-10-dodecenoic acid; 10, 11-hydroxy-12,13-epoxy-9,15-octadecadienoic acid; 11, (ω5Z)-etheroleic acid; 12, 9-hydroxy-12,13-epoxy-10-octadecenoic acid; 13, 9,10-epoxy-13-hydroxy-11,15-octadecadienoic acid; 14, 9,10-epoxy- 13-hydroxy-11-octadecenoic acid. (3′E)-Colnelenic acid is a product of thermal isomerization of the ordinary (8E,1′E,3′Z,6′Z)-colnelenic acid occurring during the GC analyses.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 1 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 1. Multiple alignments of I-helix sequences of following CYP74s: As, Allium sativum; AsDES, CAI30435; Ca, Capsicum annuum; CaDES, ABH03632; CaHPL, AAK27266; Cs, Citrus sinensis; CsAOS, NP_001275835; Gm, Glycine max; GmAOS, NP_001236445; Le, Solanum lycopersicum; LeHPL, CAB43022; LeDES, AAG42261; Lu, Linum usitatissimum; LuDES, ADP03054; Na, Nicotiana attenuata; NaAOS, CAC82911; Nt, Nicotiana tabacum; NtDES, AAL40900; NtHPL, AAZ39884; Ra, Ranunculus acris; RaDES, CYP74Q1, AJU57209; Sm, Selaginella moellendorffii; SmDES1, CYP74M1, EFJ19674; SmDES2, CYP74M3, EFJ34345; St, Solanum tuberosum; StDES, CAC28152. Hydroperoxide-binding domain is circled. Sites with substitutions are marked with arrows.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 5 in The CYP74B and CYP74D divinyl ether synthases possess a side hydroperoxide lyase and epoxyalcohol synthase activities that are enhanced by the site-directed mutagenesis

Fig. 5. GC-MS analyses of products (Me/TMS) of LuDES F291V mutant form incubations with 9(S)-HPOD (A), 9(S)-HPOT (B), 13(S)-HPOD (C), and 13(S)- HPOT (D). 2, 9,10-epoxy-11-hydroxy-12-octadecenoic acid (Me/TMS); 3, 9- hydroxynonanoic acid (Me/TMS); 5, 9,10-epoxy-11-hydroxy-12,15-octadecadienoic acid (Me/TMS); 6, 11-hydroxy-12,13-epoxy-9-octadecenoic acid (Me/ TMS); 8, (9Z)-12-hydroxy-9-dodecenoic acid (Me/TMS); 9, (10E)-12-hydroxy- 10-dodecenoic acid (Me/TMS); 10, 11-hydroxy-12,13-epoxy-9,15-octadecadienoic acid (Me/TMS). The structural formulae of products are presented in Fig. 2. 9-HOD/T and 13-HOD/T are decrypted in Fig. 3.

opennotspecifiedNov 2020View details →
zenodo32/100

Fig. 4 in Triterpene glycosides and phenylpropane derivatives from Staurogyne concinnula possessing anti-angiogenic activity

Fig. 4. The effect of Fr.A, Fr.B, and compounds 1–5, 7 on tube-like structure formation on endothelial cells.

opennotspecifiedApr 2021View details →
ClinicalTrials.gov32/100

Does Human Skeletal Muscle Possess an Epigenetic Memory of Testosterone?

ClinicalTrials.gov study NCT05964920. IPD Sharing: NO. Countries: 1. Publications: 7.

closedIPD-NOFeb 2026View details →
ClinicalTrials.gov32/100

Cognitive Function and Emotional Possessing in Bilateral Facial Palsy

ClinicalTrials.gov study NCT02179450. IPD Sharing: Not stated. Countries: 1. Publications: 4.

restrictedIPD-UNDECIDEDFeb 2026View details →
dryad32/100

Data from: Factors associated with possession of accurate knowledge regarding occupational health management among operations leaders of radiation decontamination workers in Fukushima, Japan: a cross-sectional study

Open the record for dataset details and reuse information.

publicMar 2019View details →

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Allen Brain Atlas

Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

Annotated Behaviour and Observability Dataset (ABODe)

ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

DANDI Archive for NWB datasets

DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record