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Supplementary material 2 from: Li G-J, Li S-M, Buyck B, Zhao S-Y, Xie X-J, Shi L-Y, Deng C-Y, Meng Q-F, Sun Q-B, Yan J-Q, Wang J, Li M (2021) Three new Russula species in sect. Ingratae (Russulales, Basidiomycota) from southern China. MycoKeys 84: 103-139. https://doi.org/10.3897/mycokeys.84.68750
Phylip file for ML analysis
Figure 8 from: Li G-J, Li S-M, Buyck B, Zhao S-Y, Xie X-J, Shi L-Y, Deng C-Y, Meng Q-F, Sun Q-B, Yan J-Q, Wang J, Li M (2021) Three new Russula species in sect. Ingratae (Russulales, Basidiomycota) from southern China. MycoKeys 84: 103-139. https://doi.org/10.3897/mycokeys.84.68750
Figure 8 Russula subpectinatoides, holotype A basidiospores B basidia C hymenial cystidiaD suprapellis in pileus centre E suprapellis in pileus margin.
Figure 7 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 7 Protoparmeliopsis crystalliniformis morphology (BDNA-L-0000349, holotype) A–C habitus and apothecia, areolate to squamulose thallus in white to whitish gray color D–E apothecia in vertical section F–G well-developed thalline margin H large crystals present in the thalline margin, not dissolving in KOH I clavate ascus J ascospores constantly simple and ellipsoid, often biguttulate in the beginning. Scale bars: 1 mm (A–C); 200 μm (D–E); 100 μm (F–G); 50 μm (H); 10 μm (I–J).
Figure 6 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 6 Lecanora parasymmicta morphology (BDNA-L-0001235, paratype in A BDNA-L-0001220, holotype in B–M) A–C habitus and apothecia, thalline margin of apothecia consistently absent from the beginning D blackish hypothallus (red arrows) E apothecia in vertical section F biatorine apothecia without thalline margin G–J clavate asci with eight spores K ascospores constantly simple but rarely 1-septate L immersed pycnidia M thread-like, curved pycnoconidia. Scale bars: 1 mm (A–D); 200 μm (E); 50 μm (F); 10 μm (G–K); 100 μm (L); 10 μm (M).
Figure 5 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 5 Phylogenetic relationships amongst available species in the genus Protoparmeliopsis based on a Maximum Likelihood analysis of the dataset of the mitochondrial small subunit (mtSSU) sequences. The tree was rooted with three sequences of the genus Polyozosia. Maximum Likelihood bootstrap values ≥ 70% and posterior probabilities ≥ 95% are shown above internal branches. Branches with bootstrap values ≥ 90% are shown in bold. The new species Protoparmeliopsis crystalliniformis is presented in bold, and all species names are followed by the GenBank accession numbers. Reference Table 1 provides the species related to the specific GenBank accession numbers and voucher information.
Figure 3 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 3 Phylogenetic relationships amongst available species in the Lecanora symmicta group based on a Maximum Likelihood analysis of the dataset of the mitochondrial small subunit (mtSSU) sequences. The tree was rooted with four sequences of the Lecanora subfusca group. Maximum Likelihood bootstrap values ≥ 70% and posterior probabilities ≥ 95% are shown above internal branches. Branches with bootstrap values ≥ 90% are shown in bold. The new species Lecanora parasymmicta is presented in bold, and all species names are followed by the GenBank accession numbers. Reference Table 1 provides the species related to the specific GenBank accession numbers and voucher information.
Figure 4 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 4 Phylogenetic relationships amongst available species in the genus Protoparmeliopsis based on a Maximum Likelihood analysis of the dataset of ITS sequences. The tree was rooted with five sequences of the genus Polyozosia. Maximum Likelihood bootstrap values ≥ 70% and posterior probabilities ≥ 95% are shown above internal branches. Branches with bootstrap values ≥ 90% are shown in bold. The new species Protoparmeliopsis crystalliniformis is presented in bold, and all species names are followed by the GenBank accession numbers. Reference Table 1 provides the species related to the specific GenBank accession numbers and voucher information.
Figure 2 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 2 Phylogenetic relationships amongst available species in the Lecanora symmicta group based on a Maximum Likelihood analysis of the dataset of ITS sequences. The tree was rooted with five sequences of the Lecanora subfusca group and Tephromela. Maximum Likelihood bootstrap values ≥ 70% and posterior probabilities ≥ 95% are shown above internal branches. Branches with bootstrap values ≥ 90% are shown in bold. The new sequences of Lecanora parasymmicta and Lecanora symmicta produced from this study are presented in bold, and all species names are followed by the GenBank accession numbers. Reference Table 1 provides the species related to the specific GenBank accession numbers and voucher information.
Figure 1 from: Lee BG, Hur J-S (2021) Two new lecanoroid lichen species from the forested wetlands of South Korea, with a key for Korean Protoparmeliopsis species. MycoKeys 84: 163-183. https://doi.org/10.3897/mycokeys.84.70798
Figure 1 Specific collection sites for two new species A habitat/landscape of Lecanora parasymmictaB habitat/landscape of Protoparmeliopsis crystalliniformisC locations of Lecanora parasymmicta (black circle) and Protoparmeliopsis crystalliniformis (two black stars) on the map.
Figure 1 from: He J, Luo Z-L, Tang S-M, Li Y-J, Li S-H, Su H-Y (2021) Phylogenetic analyses and morphological characters reveal two new species of Ganoderma from Yunnan province, China. MycoKeys 84: 141-162. https://doi.org/10.3897/mycokeys.84.69449
Figure 1 Phylogeny of the new Ganoderma species and related taxa based on ITS, TEF1-α and RPB2 sequence data. Branches are labeled with bootstrap values (ML) higher than 70%, and posterior probabilities (BPP) higher than 0.95. The new species are shown in bold red.
Supplementary material 1 from: He J, Luo Z-L, Tang S-M, Li Y-J, Li S-H, Su H-Y (2021) Phylogenetic analyses and morphological characters reveal two new species of Ganoderma from Yunnan province, China. MycoKeys 84: 141-162. https://doi.org/10.3897/mycokeys.84.69449
Phylogenetic sequence dataset Authors: Jun He
Figure 3 from: He J, Luo Z-L, Tang S-M, Li Y-J, Li S-H, Su H-Y (2021) Phylogenetic analyses and morphological characters reveal two new species of Ganoderma from Yunnan province, China. MycoKeys 84: 141-162. https://doi.org/10.3897/mycokeys.84.69449
Figure 3 Ganoderma esculentum holotype (HKAS 110006) A basidiomata B upper surface C lower surface D cut side of pileus E pore surface F sections of pileipellis (LM) G, H skeletal hyphae from context (LM) I binging hyphae from tubes (LM) J generative hyphae from tubes (LM) K–M basidiospores (LM) N, O basidiospores (SEM). Scale bars: 20 µm (H); 10 µm (F, G, I-M); 5 µm (N, O). Photographs Jun He.
Figure 2 from: He J, Luo Z-L, Tang S-M, Li Y-J, Li S-H, Su H-Y (2021) Phylogenetic analyses and morphological characters reveal two new species of Ganoderma from Yunnan province, China. MycoKeys 84: 141-162. https://doi.org/10.3897/mycokeys.84.69449
Figure 2 Ganoderma dianzhongense (HKAS 110005, holotype) A basidiomata B upper surface C cut side of pileus D pore surface E sections of pileipellis (LM) F skeletal hyphae from context (LM) G binging hyphae from tubes (LM) H generative hyphae from tubes (LM) I-J basidia and basidioles (LM) K-L basidiospores (LM) M-N basidiospores (SEM) O-P culture after incubation at 28 °C for 8 days. Scale bars: 20 mm (O, P); 10 µm (E-L); 5 µm (M, N). Photographs Jun He.
Figures 78–84 in Notes on Compsobuthus: redescription of C. arabicus Levy et al., 1973 from Arabia, and description of two new species from North Africa (Scorpiones: Buthidae)
Figures 78–84: Compsobuthus arabicus. Figures 78–82. Right pedipalp, femur dorsal (78), patella dorsal (79), external (80); chela external (81), ventral (82). Figures 83–84. Left pectine, male (83), female (84). Scale bar: 1 mm. Male from 55 km NW of Ibra (23°36.5'N 56°05.33'E, 22.XI.1995) (78–83); female from 10 km N of Adam (22°29.66'N 57°33'E, 23.X.1995) (84).
Figure 5 from: Zhang Z, Mu T, Liu S, Liu R, Zhang X, Xia J (2021) Morphological and phylogenetic analyses reveal a new genus and two new species of Tubakiaceae from China. MycoKeys 84: 185-201. https://doi.org/10.3897/mycokeys.84.73940
Figure 5 Tubakia dryinoides (SAUCC 1924). a diseased leaf of Quercus palustris; b surface of colony after 15 days on MEA; c reverse of colony after 15 days on MEA; d conidiomata; e–g conidiophores, conidiogenous cells with conidia; h–i conidia. Scale bars: 10 μm (e–i).
Figure 4 from: Zhang Z, Mu T, Liu S, Liu R, Zhang X, Xia J (2021) Morphological and phylogenetic analyses reveal a new genus and two new species of Tubakiaceae from China. MycoKeys 84: 185-201. https://doi.org/10.3897/mycokeys.84.73940
Figure 4 Tubakia lushanensis (SAUCC 1923). a diseased leaf of Quercus palustris; b surface of colony after 15 days on MEA; c reverse of colony after 15 days on MEA; d conidiomata; e–i conidiogenous cells with conidia; j–k conidia. Scale bars: 10 μm (e–k).
Figure 3 from: Zhang Z, Mu T, Liu S, Liu R, Zhang X, Xia J (2021) Morphological and phylogenetic analyses reveal a new genus and two new species of Tubakiaceae from China. MycoKeys 84: 185-201. https://doi.org/10.3897/mycokeys.84.73940
Figure 3 Obovoideisporodochium lithocarpi (SAUCC 0748). a infected leaf of Lithocarpus fohaiensis; b surface of colony after 15 days on MEA; c reverse of colony after 15 days on MEA; d conidiomata; e–g conidiophores, conidiogenous cells and conidia; h–i conidia. Scale bars: 10 μm (e–i).
Figure 1 from: Zhang Z, Mu T, Liu S, Liu R, Zhang X, Xia J (2021) Morphological and phylogenetic analyses reveal a new genus and two new species of Tubakiaceae from China. MycoKeys 84: 185-201. https://doi.org/10.3897/mycokeys.84.73940
Figure 1 Phylogram of Tubakiaceae, based on the concatenated ITS, LSU and rpb2 sequence alignment. The BI and ML bootstrap support values above 0.74 and 74% are shown at the first and second position, respectively. The tree is rooted to Greeneria uvicola (culture FI12007) and ex-type cultures are indicated in bold face. Strains from the current study are in red. Some branches were shortened for layout purposes – these are indicated by two diagonal lines with the number of times a branch was shortened indicated next to the lines.
Figure 2 from: Zhang Z, Mu T, Liu S, Liu R, Zhang X, Xia J (2021) Morphological and phylogenetic analyses reveal a new genus and two new species of Tubakiaceae from China. MycoKeys 84: 185-201. https://doi.org/10.3897/mycokeys.84.73940
Figure 2 Phylogram of Tubakiaceae, based on the concatenated ITS, tef1 and tub2 sequence alignment. The BI and ML bootstrap support values above 0.74 and 74% are shown at the first and second position, respectively. The tree is rooted to Greeneria uvicola (culture FI12007) and ex-type cultures are indicated in bold face. Strains from the current study are in red. Some branches were shortened for layout purposes – these are indicated by two diagonal lines with the number of times a branch was shortened indicated next to the lines.
Supplementary material 3 from: Crespo LC, Silva I, Enguídanos A, Cardoso P, Arnedo M (2022) Island hoppers: Integrative taxonomic revision of Hogna wolf spiders (Araneae, Lycosidae) endemic to the Madeira islands with description of a new species. ZooKeys 1086: 84-135. https://doi.org/10.3897/zookeys.1086.68015
Figure S1
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