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608 results for “Species recognition”
Figure 7 from: Buyck B, Henkel TW, Hofstetter V (2019) Epitypification of the Central African Cantharellus densifolius and C. luteopunctatus allows for the recognition of two additional species. MycoKeys 49: 49-72. https://doi.org/10.3897/mycokeys.49.32034
Figure 7 Cantharellustomentosoides (holotypus, Buyck 16.007). a Field habit b detail of the pileus surface c Longitudinal section showing the fistulose stipe. Photos: B. Buyck.
Figure 6 from: Buyck B, Henkel TW, Hofstetter V (2019) Epitypification of the Central African Cantharellus densifolius and C. luteopunctatus allows for the recognition of two additional species. MycoKeys 49: 49-72. https://doi.org/10.3897/mycokeys.49.32034
Figure 6 Cantharellusluteopunctatus. Microscopic features: a basidiospores b basidia and basidiola c detail of part of a squamula showing the terminal, thin- to slightly thick-walled hyphal extremities overlying the pileipellis. Scale bar: 10 µm but only 5 µm for basidiospores. Drawings: B. Buyck.
Figure 3 from: Buyck B, Henkel TW, Hofstetter V (2019) Epitypification of the Central African Cantharellus densifolius and C. luteopunctatus allows for the recognition of two additional species. MycoKeys 49: 49-72. https://doi.org/10.3897/mycokeys.49.32034
Figure 3 Cantharellusdensifolius (epitype, BB 16.021). Microscopic features: a basidiospores b basidia and basidiola c distinctly thick-walled and typically sinuous-undulate hyphal extremities of the pileipellis d detail of an encrusted hypha from the pileus context. Scale bar: 10 µm but only 5 µm for basidiospores. Drawings B. Buyck.
Figure 1 from: Buyck B, Henkel TW, Hofstetter V (2019) Epitypification of the Central African Cantharellus densifolius and C. luteopunctatus allows for the recognition of two additional species. MycoKeys 49: 49-72. https://doi.org/10.3897/mycokeys.49.32034
Figure 1 Most likely tree obtained by analysis of the 91 tef-1 sequence dataset. Species names are preceded by their extraction number (see Buyck et al. 2014 for corresponding vouchers) and followed by the corresponding GenBank deposit number. Branches that received significant ML bootstrap support are in bold with ML-bs associated values indicated above the branches. Newly produced sequences are in blue and discussed species are in bold.
Figure 1 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 1 Maximum Likelihood and Bayesian tree concatenated ITS+nLSU+SSU dataset (ML ≥ 75%, BPP ≥ 0.95 are indicated). The tree is rooted with Infundibulicybegibba. The new species are marked by ●.
Figure 4 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 4 Microscopic features of Mycenagriseotincta (HMJAU 43800, holotype). a Basidiomata b Basidia c Basidiospores d Cheilocystidia e Universal veil acanthocysts f Pileipellis g Caulocystidia. Scale bars: 10 mm (a); 10 μm (b–g). Drawing by Qin Na.
Figure 6 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 6 Microscopic features of Mycenamiscanthi (HMJAU 43584, holotype) a Basidiomata b Basidiospores c Basidia d Universal veil acanthocysts e Cheilocystidia f Pileipellis g Caulocystidia. Scale bars: 10 mm (a); 10 μm (b–g). Drawing by Qin Na.
Figure 5 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 5 Microscopic features of Mycenahygrophoroides (HMJAU 43417, holotype) a Basidiomata b Basidia c Basidiospores d Cheilocystidia e Universal veil acanthocysts f Caulocystidia g Pileipellis. Scale bars: 2 mm (a); 10 μm (b–g). Drawing by Qin Na.
Figure 3 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 3 Microscopic features of Mycenabicystidiata (HMJAU 43648, holotype) a Basidiomata b Basidiospores c Basidia d Universal veil acanthocysts e Cheilocystidia f Caulocystidia g Pileipellis. Scale bars: 5 mm (a); 10 μm (b–g). Drawing by Qin Na.
Figure 2 from: Na Q, Bau T (2019) Recognition of Mycena sect. Amparoina sect. nov. (Mycenaceae, Agaricales), including four new species and revision of the limits of sect. Sacchariferae. MycoKeys 52: 103-124. https://doi.org/10.3897/mycokeys.52.34647
Figure 2 Basidiomata of sect. Amparoina species. stirps Alphitophora: a–bMycenaalphitophora (Berk.) Sacc. c–dMycenabicystidiata T.Bau & Q.Na eMycenacorynephora Maas Geest. f–gMycenagriseotincta T.Bau & Q.Na hMycenahygroporoides T.Bau & Q.Na iMycenamiscanthi T.Bau & Q.Na; stirps Amparoina: jMycenacastaneicola T.Bau & Q.Na k–mMycenaheteracantha (Singer) Desjardin. Basidiomata of sect. Saccariferae species n–oMycenahyalinostipitata T.Bau & Q.Na p–qMycenasubstylobates T.Bau & Q.Na rMycenatenerrima (Berk.) Quél. (=Mycenaadscendens Maas Geest.) Scale bars: 10 mm (a–g, i–m, r), 5 mm (h, n–q). Photographs a–r by Qin Na.
Supplementary material 5 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
: Data type: molecular data
Supplementary material 4 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
: Data type: measurement
Supplementary material 3 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
: Data type: phylogenetic data
Supplementary material 2 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
: Data type: species data
Figure 4 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
Figure 4 Distribution of the Esculenta Clade phylospecies in the Czech Republic (and Slovakia) based on identification by ITS or multi-gene sequencing. For details see Supplementary Table 2.
Figure 3 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
Figure 3 Distribution of the Elata Clade phylospecies in the Czech Republic (and Slovakia) based on identification by ITS or multi-gene sequencing, or phenotypic identification (in the case of Mel-3). For details see Supplementary Table 2.
Figure 2 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
Figure 2 Bayesian phylogeny inference tree based on five-gene concatenated alignment from selected accessions of the Esculenta Clade. Posterior probabilities (PP) are shown above branches, splits with PP < 50% were collapsed.
Figure 1 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
Figure 1 Bayesian phylogeny inference tree based on five-gene concatenated alignment from selected accessions of the Elata Clade. Posterior probabilities (PP) are shown above branches, splits with PP < 50% were collapsed.
Supplementary material 1 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
: Data type: occurrence
Figure 5 from: Petrželová I, Sochor M (2019) How useful is the current species recognition concept for the determination of true morels? Insights from the Czech Republic. MycoKeys 52: 17-43. https://doi.org/10.3897/mycokeys.52.32335
Figure 5 Examples of the fruiting bodies of Morchella phylospecies in the Czech Republic. A1–2 Mel-3 (M.semilibera; A1. accession number VK13, A2. IP229) B Mel-10 (M.importuna; IP26) C Mel-13/26 (HR86151) D Mel-15/16 (IP245 and IP247) E Mel-19 (M.eohespera; HR99241) F Mel-20/34 (HR102132) G Mel-23/24/31/32 (HR102133) H Mel-39 (VK17) I Mes-4 (M.americana; IP297) J Mes-5 (IP350, IP351) K Mes-8 (M.esculenta; IP341) Photographers: Vavřinec Klener (A1, H, K); Irena Petrželová (A2, B, D, I, J); Jan Kramoliš (F, G); Dušan Bureš (C, E).
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.