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61
datasets available to search
ShareScore release 0.7.1
Dataset results
61 results for “Juncaceae”
Luzula bulbosa (Juncaceae) - fruit - lateral or general close-up
Image of Luzula bulbosa (Juncaceae) - fruit - lateral or general close-up
Luzula bulbosa (Juncaceae) - leaf - basal or on lower stem
Image of Luzula bulbosa (Juncaceae) - leaf - basal or on lower stem
Luzula bulbosa (Juncaceae) - inflorescence - whole - unspecified
Image of Luzula bulbosa (Juncaceae) - inflorescence - whole - unspecified
Luzula bulbosa (Juncaceae) - stem - showing leaf bases
Image of Luzula bulbosa (Juncaceae) - stem - showing leaf bases
Luzula bulbosa (Juncaceae) - inflorescence - whole - unspecified
Image of Luzula bulbosa (Juncaceae) - inflorescence - whole - unspecified
Luzula bulbosa (Juncaceae) - whole plant - in flower - general view
Image of Luzula bulbosa (Juncaceae) - whole plant - in flower - general view
Fig. 9 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 9 Macroscopic symptoms of the infection of Juncus oxycarpus (a, healthy plant) roots by Juncorrhiza oxycarpi (b). Scale bars: a approx. 1 cm, b = 1 mm
Fig. 5 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 5 Macroscopic symptoms of the infection of Fuirena ciliaris roots by Entorrhiza fuirenae (arrows). Scale bar = approx. 1 cm
Fig. 7 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 7 Macroscopic symptoms of the infection of Juncus ranarius roots by Juncorrhiza maritima (arrows). Scale bar = 5 mm
Fig. 4 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 4 Tanglegram between host plant (left) and fungal (right) phylogenies reconstructed from the ITS + rbcL and ITS + LSU sequences, respectively. Nodal support is given as maximum likelihood bootstrap (≥
Fig. 10 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 10 Juncorrhiza oxycarpi (holotype) on Juncus oxycarpus: a–b spores in the living host cells seen by light microscopy; c–d spores seen by light microscopy, median and superficial views; e–g spores seen by
Fig. 1 A in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 1 A root galls and spores of Juncorrhiza casparyana associated with Juncus articulatus: a plant roots with galls (arrowed); b coiled hyphae (arrowed) and spores in root cells. Scale bar = 20 μm
Fig. 8 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 8 Juncorrhiza maritima (holotype) on Juncus ranarius: a–b spores in host cells seen by light microscopy; c–d spores seen by light microscopy, median and superficial views; e–h spores seen by scanning electron microscopy. Scale bars: e 30 μm, f 20 μm, a–d, g–h 10 μm
Fig. 2 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 2 Collapsed chronogram for Basidiomycota and Entorrhizomycota evolution. The tree topology represents the consensus of trees inferred with BEAST from combined 18S + 28S + rpb1 domains B-C sequences from 83 Basidiomycota species, three Entorrhizomycota species and three Ascomycota species as outgroup. Alignment length = 3903. The age estimation mean is followed by the 95% highest density probability range in square brackets. Numbers on branches represent bootstrap values obtained from 1000 replicates (values ≥ 70), maximum support of 100 is encoded with bold lines. For full dataset, see Supplementary material (Fig. S1). Abbreviations: Ordo., Ordovician; Sil., Silurian; Carbon., Carboniferous; Paleo., Paleogene; N., Neogene
Fig. 6 in The origin and diversification of the Entorrhizales: deep evolutionary roots but recent speciation with a phylogenetic and phenotypic split between associates of the Cyperaceae and Juncaceae
Fig. 6 Spores of Entorrhiza fuirenae (holotype) seen by light microscopy. Scale bar = 10 μm
Data from: Gene flow blurs species boundaries in the <em>Juncus ensifolius</em> – <em>saximontanus</em> (Poales: Juncaceae) species complex
Open the record for dataset details and reuse information.
FIGURE 12 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 12. DIC images of genital region of Novophytoptus maritimus n. sp. showing difference in the thickness of opisthosomal setae in females (A,B) and males (C). Scale bar = 15 Μm.
FIGURE 11 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 11. DIC images of legs and tarsal appendages of normal (A,B) and aberrant (C,D) females of Novophytoptus maritimus n. sp. А—dorsal view of leg I and II on the level of ω I and II in focus; B—empodia I and II (same mite as on Fig. A); C, D—aberrant tarsus I, with ω I displaced medially and seta ft' short and stout. Note: on Fig. C tarsus is coloured in red and tibia is coloured in green. Scale bar: A = 15 Μm; B = 10 Μm; C, D = 5 Μm.
FIGURE 10 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 10. DIC images showing variation of prodorsal shield ornamentation in females (A−G) and males (H,I) of Novophytoptus maritimus n. sp. Scale bar: A–I = 15 Μm.
FIGURE 7 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 7. DIC images of telosome regions of Novophytoptus aculeatus Pye 2012 (A−D) and Novophytoptus luzulis n. sp. (E−G) Note: arrows indicate setae h1. Scale bar = 10 Μm.
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