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FIGURE 11 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 11. Puccinia circaeae-caricis on Circaea sp. (A–H) and Carex sp. (I). A. Plants producing spermogonia and aecia on the leaf surface in the field. B, D. Aecia on the lower leaf surface. C. Vertical section of a spermogonium. E. Vertical section of an aecium surrounded with peridia. F. Aeciospores. G. An aecium observed under SEM. H. Aeciospores with granules on the surface observed under SEM. I. Vertical section of a telium. Scale bars: C, F, I = 20 μm, E, G = 50 μm, H = 5 μm.
FIGURE 10 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 10. Puccinia caricis-hebeiensis on Carex sp. A. Telia on the lower leaf surface. B, C. Vertical section of a telium. Scale bars: B, C = 20 μm.
FIGURE 12 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 12. Puccinia caricis-artemisiae on Artemisia sp. (A–F) and Carex neurocarpa (G–K). A. Plants producing spermogonia and aecia on the leaf surface in the field. B. Aecia on the lower leaf surface. C. Vertical section of an aecium surrounded with peridia. D. Aeciospores. E. An aecium observed under SEM. F. An aeciospore with granules on the surface observed under SEM. G, H. Uredinia and telia on the lower leaf surface. I. Urediniospores. J. Vertical section of an uredinium. K. Vertical section of a telium. Scale bars: C = 50 μm, D, I = 20 μm, E = 10 μm, F = 5 μm, J, K = 30 μm.
FIGURE 7 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 7. Puccinia caricis-ribicola on Ribes mandshuricum (A–C) and Carex dispalata (D–F). A. Vertical section of a spermogonium. B. Vertical section of an aecium surrounded with peridia. C. Aeciospores. D. Plants producing telia on the leaf surface in the field. E. Telia on the lower leaf surface. F. Vertical section of a telium. Scale bars: A, C, F = 20 μm, B = 30 μm.
FIGURE 13 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 13. Puccinia caricis-amblyolepis on Carex sp. A. Plants producing uredinia and telia on the leaf surface in the field. B. Vertical section of a uredinium. C. Urediniospores. D. Uredinia and telia on the lower leaf surface. E. Teliospores. F. Vertical section of a telium. Scale bars: B, C = 30 μm, E, F = 20 μm.
FIGURE 9 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 9. Puccinia vaginatae on Saussurea sp. (A–F) and Carex sp. (G–I). A. Plants producing spermogonia and aecia on the leaf surface in the field. B. Vertical section of a spermogonium. C. Vertical section of an aecium surrounded with peridia. D. Aecia on the lower leaf surface. E. Aeciospores with granules on the surface observed under SEM. F. An aecium observed under SEM. G. Telia on the lower leaf surface. H, I. Vertical section of a telium. Scale bars: B = 20 μm, C = 30 μm, E = 5 μm, F, H, I = 50 μm.
FIGURE 8 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 8. Puccinia caricis-atractylodis on Atractylodes macrocephala (A–E, H, I) and Carex lanceolata (F, G, J). A. Plants producing spermogonia and aecia on the leaf surface in the field. B. Aecia on the lower leaf surface. C. Vertical section of a spermogonium. D. Vertical section of an aecium surrounded with peridia. E. Aeciospores. F. Plants producing telia on the leaf surface in the field. G. Telia on the lower leaf surface. H. An aecium observed under SEM. I. Aeciospores with granules on the surface observed under SEM. J. Vertical section of a telium. Scale bars: C, E = 20 μm, D = 50 μm, H = 100 μm, I = 5 μm, J = 30 μm.
FIGURE 5 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 5. Puccinia adenocauli on Adenocaulon himalaicum (A–F) and Carex onoei (G–J). A. Plants producing spermogonia and aecia on the leaf surface. B. A vertical section of a spermogonium. C. Vertical section of an aecium surrounded with peridia. D. Aecia on the lower the leaf surface. E. An aecium observed under SEM. F. Aeciospores with granules on the surface observed under SEM. G. Uredinia on the lower leaf surface. H. A vertical section of a uredinium. I. Urediniospores. J. Teliospores. Scale bars: B, I, J = 20 μm, C, H = 30 μm, E = 100 μm, F = 5 μm.
FIGURE 6 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 6. Puccinia caricis-violae on Viola acuminata (A–G) and Carex sp. (H, I). A. Plants producing spermogonia and aecia on the leaf surface in the field. B. Aecia on the lower leaf surface. C. Vertical section of a spermogonium. D. Vertical section of an aecium surrounded with peridia. E. Aeciospores. F. An aecium observed under SEM. G. Aeciospores with granules on the surface observed under SEM. H. Telia on the leaf surface. I. Vertical section of a telium. Scale bars: C, E, J = 20 μm, D = 30 μm, F = 50 μm, G = 10 μm.
FIGURE 4 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 4. Puccinia caricis-lactucae on Prenanthes (A–D, F–H) and Carex (E, I). A. Plants producing spermogonia and aecia on the leaf surface in the field. B. Vertical section of a spermogonium. C. Spermogonia and aecia on the lower leaf surface. D. Vertical section of an aecium surrounded with peridia. E. Telia on the leaf surface. F. An aecium observed under SEM. G. Aeciospores with granules on the surface observed under SEM. H. Aeciospores. I. Vertical section of a telium. Scale bars: B, H = 20 μm, D, F, I = 40 μm, G = 10 μm.
FIGURE 3 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 3. Phylogenetic tree of specimens on Cyperaceae and related host plants constructed by MP method based on ITS+28S regions of rDNA. Bootstrap values of MP and ML are followed by the Bayesian posterior probabilities (Bpp) on the nodes in the topology. Asterisk (*) represents bootstrap values or Bpp less than 50% in the topology. Sample data are shown with voucher specimen number or GenBank accession number, and host plant. Sequence data determined in this study are shown in color. Teliospore shapes are shown in each clade detected, and new species are shown by asterisk (*) on clades. 0, I: Spermogonial and aecial host genus. Asterisk (*) on host plants: Spermogonial and aecial host plants.
FIGURE 2 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 2. Phylogenetic relationships among species on Carex shown with synoptic phylogenetic tree constructed by MP method based on ITS+28S regions of rDNA. Same color branches show phylogenetic groups. 0, I: Spermogonial and aecial host genus.
FIGURE 1 in Phylogenetic approach for identification and life cycles of Puccinia (Pucciniaceae) species on Carex (Cyperaceae) from northeastern China
FIGURE 1. Collection areas in northeastern China. A. Changchun area in Jilin Province. B. Jilin area in Jilin Province. C. Mountanious area in southern Heilongjiang Province. D. Area around Changbai Mountains in Jilin Province. E. Baicheng area in western Jilin Province. F. Yanbian area in eastern Jilin Province. G. Tonghua area in southeastern Jilin Province.
Input dataset for the life cycle optimization of biobased PET supply chain
<p>Dataset with economic and environmental information used for the life cycle optimization of biobased PET using miscanthus as feestock.</p>
Stepwise guidance for data collection in the life cycle inventory (LCI) phase: Building technology-related LCI blocks
<p><strong><em>Supplementary Material 2 - Generic and customizable LCI data collection template</em></strong> from the publication <em><strong>"Stepwise guidance for data collection in the life cycle inventory (LCI) phase: </strong></em><em><strong>Building technology-related LCI blocks"</strong></em></p>
FIGURE 6 in Devonian smooth-walled tasmanids and new insights of life-cycle descriptions through fluorescence microscopy
FIGURE 6. Life stage interpretative drawings based off of interpretation schematic of modern marine algal cysts (Bravo and Figueroa, 2014). 6a: image of tasmanid in a vegetative stage; 6b: image of a tasmanid in a gamete sack stage; 6c image of a tasmanid in a dividing cyst stage; 6d: image of a tasmanid in a resting cyst stage.
FIGURE 3 in Devonian smooth-walled tasmanids and new insights of life-cycle descriptions through fluorescence microscopy
FIGURE 3. Transmitted and incident light images of silica-rich microspherules retrieved from the Oatka Creek Formation, Leroy, New York. 1a–c conjoined or splitting tasmanid containing internal pyritic inclusions, interpreted to be a dividing cyst; 2a–c single tasmanid with no pyritic inclusions but numerous surficial punctae, interpreted to be a vegetative cyst; 3a–c tasmanid with well defined internal structure interpreted to be a resting cyst. Images taken at a magnification of 10x, average diameter of all cysts, 125 µm.
FIGURE 2 in Devonian smooth-walled tasmanids and new insights of life-cycle descriptions through fluorescence microscopy
FIGURE 2. Transmitted and incident light images of silica-rich microspherules retrieved from the Oatka Creek Formation, Leroy, New York. Internal to external (left to right) focal point shift imaging approach allows for internal structures at different points within the tasmanid to be imaged: 1a–e: internal pyritic inclusions imaged throughout single tasmanid, inclusions interpreted to be portions of gamete stage internal strucres; 2a–e, surface punctae visible (2a) in addition to internal pyritic inclusions; 3 a–e conjoined or splitting tasmanid containing internal pyritic inclusions. Images taken at a magnification of 10x, average diameter of all cysts, 125 µm.
FIGURE 5 in Devonian smooth-walled tasmanids and new insights of life-cycle descriptions through fluorescence microscopy
FIGURE 5. Fluorescence microscopy images of select silica-rich microspherules from the Oatka Creek Formation, Leroy, New York. 5a: tasmanid interpreted to be a gamete sack; 5b" tasmanid interpreted to be a diving stage cyst.
FIGURE 1 in Devonian smooth-walled tasmanids and new insights of life-cycle descriptions through fluorescence microscopy
FIGURE 1. Large scale map of New York state denoting the location of the study area within the region; detail inset of the study location of sampling in Oatka Creek in the city of Leroy, New York; generalized stratigraphic section of Eifellian to Givetian formations of Leroy, New York found within Oatka Creek.
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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.
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.
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.
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.