Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
17
datasets available to search
ShareScore release 0.9.0
Dataset results
17 results for “Hyphoderma”
FIGURE 1 in Molecular phylogeny and morphology reveal a new wood-inhabiting fungal species, Hyphoderma guangdongense (Polyporales, Basidiomycota), from China
FIGURE 1. Maximum parsimony strict consensus tree illustrating the phylogeny of a new species and related species in Hyphoderma based on ITS+nLSU sequences. The branch is labeled with the maximum likelihood lead value equal to or greater than 70%, the reduced lead value equal to or greater than 50%, and the Bayesian posterior probability value equal to or greater than 95%. The new species is in bold.
FIGURE 2 in Molecular phylogeny and morphology reveal a new wood-inhabiting fungal species, Hyphoderma guangdongense (Polyporales, Basidiomycota), from China
FIGURE 2. Hyphoderma guangdongense (holotype, CLZhao 12657): basidiomata on the substrate (A), macroscopic characteristics of hymenophore (B). Bars: (A) = 2 cm and (B) = 2 mm.
TABLE 1 in Molecular phylogeny and morphology reveal a new wood-inhabiting fungal species, Hyphoderma guangdongense (Polyporales, Basidiomycota), from China
<p><b>TABLE 1.</b> Names, voucher numbers, references, and corresponding GenBank accession numbers of sequences used in this study. (The new species are in bold, * is shown type material, - is shown data without used)</p><table><tbody><tr><th><b>Species name</b></th><th><b>Voucher number</b></th><th><b>GenBank accession number</b></th><th><b>References</b></th></tr></tbody><tbody><tr><th></th><td></td><td><b>ITS</b></td><td><b>nLSU</b></td><td></td></tr><tr><th><i>Diplomitoporus crustulinus Hyphoderma amoenum</i></th><td>FD-137 USO 286622</td><td>KP135299 HE577030</td><td>KP135211 -</td><td>Justo <i>et al</i>. 2017 Tellería <i>et al</i>. 2012</td></tr><tr><th><i>H. assimile</i></th><td>CBS:125852</td><td>MH863808</td><td>MH875272</td><td>Vu <i>et al</i>. 2019</td></tr><tr><th><i>H. cremeoalbum</i></th><td>NH 11538 (GB)</td><td>DQ677492</td><td>DQ677492</td><td>Larsson 2007</td></tr><tr><th><i>H. cremeoalbum</i></th><td>CLZhao 17007</td><td>OM985716</td><td>OM985753</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. crystallinum</i></th><td>CLZhao 9338</td><td>MW917161</td><td>MW913414</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. crystallinum</i></th><td>CLZhao 9374</td><td>MW917162</td><td>MW913415</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. definitum</i></th><td>NH 12266 (GB)</td><td>DQ677493</td><td>DQ677493</td><td>Larsson 2007</td></tr><tr><th><i>H. fissuratum</i></th><td>CLZhao 6731</td><td>MT791331</td><td>-</td><td>Ma <i>et al</i>. 2021</td></tr><tr><th><i>H. fissuratum</i></th><td>CLZhao 6726</td><td>MT791330</td><td>MT791334</td><td>Ma <i>et al</i>. 2021</td></tr><tr><th><i>H. floccosum</i></th><td>CLZhao 17129</td><td>MW301683</td><td>MW293733</td><td>Guan & Zhao 2021b</td></tr><tr><th><i>H. floccosum</i></th><td>CLZhao 17215</td><td>MW301687</td><td>MW293735</td><td>Guan & Zhao 2021b</td></tr><tr><th><i>H. granuliferum</i></th><td>5273</td><td>JN710545</td><td>JN710545</td><td>Yurchenko & Wu 2014b</td></tr><tr><th><i>H. guangdongense</i></th><td><b>CLZhao 12657</b></td><td><b>PP235513</b></td><td><b>PP235514</b></td><td><b>Present study</b></td></tr><tr><th><i>H. incrustatum</i></th><td>KHL6685</td><td>-</td><td>AY586668</td><td>Yurchenko & Wu 2014b</td></tr><tr><th><i>H. litschaueri</i></th><td>NH 7603 (GB)</td><td>DQ677496</td><td>DQ677496</td><td>Larsson 2007</td></tr><tr><th><i>H. litschaueri</i></th><td>FP-101740-Sp</td><td>KP135295</td><td>KP135219</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. macaronesicum</i></th><td>MA:Fungi 90388</td><td>KC984327</td><td>-</td><td>Unpublished</td></tr><tr><th><i>H. macaronesicum</i></th><td>TFC:Mic 15115</td><td>HE577011</td><td>-</td><td>Yurchenko & Wu 2014b</td></tr><tr><th><i>H. marginatum</i></th><td>CLZhao 3404</td><td>OM985717</td><td>OM985754</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. medioburiense</i></th><td>FD-335</td><td>KP135298</td><td>KP135220</td><td>Floudas & Hibbett 2015</td></tr><tr><th><i>H. membranaceum</i></th><td>CLZhao 5844</td><td>MW917167</td><td>MW913420</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. membranaceum</i></th><td>CLZhao 6971</td><td>MW917168</td><td>MW913421</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. microporoides</i></th><td>CLZhao 6857</td><td>MW917169</td><td>MW913422</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. microporoides</i></th><td>CLZhao 8695</td><td>MW917170</td><td>MW913423</td><td>Guan & Zhao 2021a</td></tr><tr><th><i>H. moniliforme</i></th><td>Wu 0211-42</td><td>KC928282</td><td>-</td><td>Yurchenko & Wu 2015</td></tr><tr><th><i>H. moniliforme</i></th><td>Wu 0211-46</td><td>KC928284</td><td>-</td><td>Yurchenko & Wu 2015</td></tr><tr><th><i>H. mopanshanense</i></th><td>CLZhao 6498</td><td>MT791329</td><td>MT791333</td><td>Ma <i>et al</i>. 2021</td></tr><tr><th><i>H. mopanshanense</i></th><td>CLZhao 6449</td><td>OM985720</td><td>OM985759</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. nemorale</i></th><td>TNM F3931</td><td>KJ885183</td><td>KJ885184</td><td>Yurchenko & Wu 2015</td></tr><tr><th><i>H. nemorale</i></th><td>Wu 9508-14</td><td>KC928280</td><td>KC928281</td><td>Yurchenko & Wu 2015</td></tr><tr><th><i>H. niveomarginatum</i></th><td>CLZhao 25078</td><td>OR141728</td><td>OR506179</td><td>Yang <i>et al</i>. 2023</td></tr><tr><th><i>H. nudicephalum</i></th><td>Wu9307_29</td><td>AJ534269</td><td>-</td><td>Nilsson <i>et al.</i> 2003</td></tr><tr><th></th><td></td><td><b>ITS</b></td><td><b>nLSU</b></td><td></td></tr><tr><th><i>H. nudicephalum</i></th><td>CLZhao 17839</td><td>OM985721</td><td>OM985760</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. obtusiforme</i></th><td>KHL1464</td><td>JN572909</td><td>-</td><td>Yurchenko & Wu 2014a</td></tr><tr><th><i>H. obtusiforme</i></th><td>KHL11105</td><td>JN572910</td><td>-</td><td>Yurchenko & Wu 2014a</td></tr><tr><th><i>H. obtusum</i></th><td>JS17804</td><td>-</td><td>AY586670</td><td>Yurchenko & Wu 2014a</td></tr><tr><th><i>H. occidentale</i></th><td>KHL 8477 (GB)</td><td>DQ677499</td><td>DQ677499</td><td>Larsson 2007</td></tr><tr><th><i>H. paramacaronesicum</i></th><td>MA: Fungi 87736</td><td>KC984399</td><td>-</td><td>Martín <i>et al</i>. 2018</td></tr><tr><th><i>H. paramacaronesicum</i></th><td>MA: Fungi 87737</td><td>KC984405</td><td>-</td><td>Martín <i>et al</i>. 2018</td></tr><tr><th><i>H. prosopidis</i></th><td>ARIZ HHB 8479</td><td>HE577029</td><td>-</td><td>Yurchenko & Wu 2015</td></tr><tr><th><i>H. puerense</i></th><td>CLZhao 9476</td><td>MW443045</td><td>-</td><td>Guan <i>et al.</i> 2021</td></tr><tr><th><i>H. puerense</i></th><td>CLZhao 9583</td><td>MW443046</td><td>MW443051</td><td>Guan <i>et al</i>. 2021</td></tr><tr><th><i>H. setigerum</i> *</th><td>FCUG 1200</td><td>AJ534273</td><td>-</td><td>Nilsson <i>et al</i>. 2003</td></tr><tr><th><i>H. setigerum</i> *</th><td>FCUG 1688</td><td>AJ534272</td><td>-</td><td>Nilsson <i>et al</i>. 2003</td></tr><tr><th><i>H. sinense</i></th><td>CLZhao 7963</td><td>MW301679</td><td>MW293730</td><td>Guan & Zhao 2021b</td></tr><tr><th><i>H. sinense</i></th><td>CLZhao 17811</td><td>MW301682</td><td>MW293732</td><td>Guan & Zhao 2021b</td></tr><tr><th><i>H. sordidum</i></th><td>CLZhao 27379</td><td>OR141731</td><td>-</td><td>Yang <i>et al</i>. 2023</td></tr><tr><th><i>H. sordidum</i></th><td>CLZhao 27390</td><td>OR141732</td><td>OR506180</td><td>Yang <i>et al</i>. 2023</td></tr><tr><th><i>H. subsetigerum</i></th><td>HHB11620</td><td>GQ409521</td><td>-</td><td>Yurchenko & Wu 2014a</td></tr><tr><th><i>H. tenuissimum</i></th><td>CLZhao 7221</td><td>MW443049</td><td>MW443054</td><td>Guan <i>et al</i>. 2021</td></tr><tr><th><i>H. tenuissimum</i></th><td>CLZhao 16210</td><td>MW443050</td><td>MW443055</td><td>Guan <i>et al</i>. 2021</td></tr><tr><th><i>H. transiens</i></th><td>NH 12304 (GB)</td><td>DQ677504</td><td>DQ677504</td><td>Larsson 2007</td></tr><tr><th><i>H. tropicum</i></th><td>CLZhao 17308</td><td>OM985727</td><td>OM985768</td><td>Duan <i>et al</i>. 2023</td></tr><tr><th><i>H. variolosum</i></th><td>CBS: 734.91</td><td>MH862320</td><td>MH873992</td><td>Vu <i>et al.</i> 2019</td></tr><tr><th><i>H. variolosum</i></th><td>CBS: 735.91</td><td>MH862321</td><td>MH873993</td><td>Vu <i>et al.</i> 2019</td></tr><tr><th><i>H. weishanense</i></th><td>CLZhao 22403</td><td>OR141727</td><td>OR506181</td><td>Yang <i>et al</i>. 2023</td></tr></tbody></table><p>...continued on the next page</p>
FIGURE 6 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 6. Microscopic structures of Hyphoderma tropicum (drawn from the holotype, CLZhao 17308). A: Basidiospores. B: Basidia and basidioles. C: Cystidia. D: Part of the vertical section of hymenium. Bars: A = 5 µm, B–D = 10 µm. Drawings by: Zi-Yan Duan.
FIGURE 3 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 3. Basidiomata of Hyphoderma marginatum. Bars: A = 2 cm, B = 1 mm (Holotype: CLZhao 3404). Photo plate by: Zi-Yan Duan.
FIGURE 2 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 2. Maximum parsimony strict consensus tree illustrating the phylogeny of three new species and related species in Hyphoderma based on ITS sequences. Branches are labelled with maximum likelihood bootstrap values ≥70%, parsimony bootstrap values ≥50% and Bayesian posterior probabilities ≥0.95, respectively. Scale bar = 50. The new species are in bold.
FIGURE 1 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 1. Maximum parsimony strict consensus tree illustrating the phylogeny of Hyphoderma and related genera in the order Polyporales based on ITS+nLSU sequences. The families represented by each color are indicated in the upper left of the phylogenetic tree.
FIGURE 8 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 8. Microscopic structures of Hyphoderma yunnanense (drawn from the holotype, CLZhao 8845). A: Basidiospores. B: Basidia and basidioles. C: Cystidia. D: Part of the vertical section of hymenium. Bars: A = 5 µm, B–D = 10 µm. Drawings by: Zi-Yan Duan.
FIGURE 4 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 4. Microscopic structures of Hyphoderma marginatum (drawn from the holotype, CLZhao 3404). A: Basidiospores. B: Basidia and basidioles. C: Cystidia and cystidioles. D: Part of the vertical section of hymenium. Bars: A = 5 µm, B–D = 10 µm. Drawings by: Zi-Yan Duan.
FIGURE 5 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 5. Basidiomata of Hyphoderma tropicum. Bars: A = 2 cm, B = 1 mm (Holotype: CLZhao 17308). Photo plate by: Zi-Yan Duan.
Figure 5 from: Guan Q-X, Li Y-F, Zhao C-L (2021) Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from southern China, with a key to all Chinese Hyphoderma. MycoKeys 83: 145-160. https://doi.org/10.3897/mycokeys.83.69909
Figure 5 Microscopic structures of Hyphoderma tenuissimum (holotype) a basidiospores b basidia and basidioles c cystidia d a section of hymenium. Scale bars: 10 µm (a–d).
Figure 1 from: Guan Q-X, Li Y-F, Zhao C-L (2021) Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from southern China, with a key to all Chinese Hyphoderma. MycoKeys 83: 145-160. https://doi.org/10.3897/mycokeys.83.69909
Figure 1 Maximum parsimony strict consensus tree illustrating the phylogeny of the two new species and related species in Hyphoderma, based on ITS1+5.8S+ITS2+nLSU sequences. Branches are labelled with maximum likelihood bootstrap values > 70%, parsimony bootstrap values > 50% and Bayesian posterior probabilities > 0.95, respectively.
Figure 3 from: Guan Q-X, Li Y-F, Zhao C-L (2021) Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from southern China, with a key to all Chinese Hyphoderma. MycoKeys 83: 145-160. https://doi.org/10.3897/mycokeys.83.69909
Figure 3 Microscopic structures of Hyphoderma puerense (holotype) a basidiospores b basidia and basidioles c cystidia d a section of hymenium. Scale bars: 5 µm (a); 10 µm (b–d).
Figure 4 from: Guan Q-X, Li Y-F, Zhao C-L (2021) Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from southern China, with a key to all Chinese Hyphoderma. MycoKeys 83: 145-160. https://doi.org/10.3897/mycokeys.83.69909
Figure 4 Basidiomata of Hyphoderma tenuissimum (holotype). Scale bars: 2 cm (a); 1 mm (b).
Figure 2 from: Guan Q-X, Li Y-F, Zhao C-L (2021) Morphological and phylogenetic evidence for recognition of two new species of Hyphoderma (Basidiomycota) from southern China, with a key to all Chinese Hyphoderma. MycoKeys 83: 145-160. https://doi.org/10.3897/mycokeys.83.69909
Figure 2 Basidiomata of Hyphoderma puerense (holotype). Scale bars: 2 cm (a); 1 mm (b).
FIGURE 3 in Molecular phylogeny and morphology reveal a new wood-inhabiting fungal species, Hyphoderma guangdongense (Polyporales, Basidiomycota), from China
FIGURE 3. Microscopic structures of Hyphoderma guangdongense (holotype, CLZhao 12657): basidiospores (A), basidia and basidioles (B), tubular cystidia (C), septate cystidia (D), a section of the hymenium (E). Bars: (A–C) = 5 µm; (D–E) = 10 µm.
FIGURE 7 in Morphological and molecular identification of three new resupinate species of Hyphoderma (Hyphodermataceae, Agaricomycetes) from East Asia
FIGURE 7. Basidiomata of Hyphoderma yunnanense. Bars: A = 1 cm, B = 1 mm (Holotype: CLZhao 8845). Photo plate by: Zi-Yan Duan.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.