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9 results for “Rinodina”
FIGURE 2 in A new saxicolous species, Rinodina jacutica (Physciaceae, lichenized Ascomycota) from the Republic of Sakha (Yakutia), Russia
FIGURE 2. Spore ontogeny of Rinodina jacutica: A 1–6. Early spore development prior to wall pigmentation; 1, 2. apical walls unthickened prior to septum formation – type A development; 3, 4. septum present and walls equally thickened; 5, 6, walls thickened at apices and septum - Physcia-like locules. B. 1–5. Mature spores, walls pigmented, torus not evident, apical and septal wall thickening; 1, 2. locules Physcia-like; 3-5. spores with swelling at the septum; 4. spore focused to show septal disc, a characteristic of the Dirinaria-type spore. Scale bars = 10 μm.
FIGURE 1. Rinodina jacutica. A in A new saxicolous species, Rinodina jacutica (Physciaceae, lichenized Ascomycota) from the Republic of Sakha (Yakutia), Russia
FIGURE 1. Rinodina jacutica. A. Habit of Rinodina jacutica, scale bar = 1 mm. B–C. Dirinaria-type spores of Rinodina jacutica. B. Spores within ascus, note the Physcia-like lumina and lack of a torus. C. Spore structure, note the septal swelling, the lack of a torus and presence of a septal disc. Scale bar for spores = 10 μm.
FIGURE 2 in Rinodina riparia (Physciaceae, lichenized Ascomycota) new to Eurasia from China and Russia
FIGURE 2. Rinodina riparia (specimen from Yakutia, SASY L-2008-08-07/0-2). A. Habit of Rinodina riparia, apothecia broadly attached and contiguous, disc persistently plane, thalline margin concolorous with thallus, entire and persistent. B, C. Dirinaria-type spores with the Physcia-like lumina. B. Premature spore, note the septal swelling and lack of a torus. C. Mature spores showing bulbous apices and septal swelling in KOH. D. Immature spores indicate prior to septal division in Type B development in KOH. Scale: A = 0.5 mm, B, C, D = 10 μm.
Figure 3 from: Lee BG, Hur J-S (2022) Two new Rinodina lichens from South Korea, with an updated key to the species of Rinodina in the far eastern Asia. MycoKeys 87: 159-182. https://doi.org/10.3897/mycokeys.87.71524
Figure 3 Phylogenetic relationships among available species in the genus Rinodina based on a maximum likelihood analysis of the dataset of ITS sequences. The tree was rooted with the sequences of the genera Amandinea and Buellia. Maximum likelihood bootstrap values ≥ 70% and posterior probabilities ≥ 95% are shown above internal branches. Branches with bootstrap values ≥ 90% are shown as fatty lines. Two new species, R. salicis and R. zeorina are presented in bold as their DNA sequences were produced from this study. All species names are followed by the Genbank accession numbers.
Figure 5 from: Lee BG, Hur J-S (2022) Two new Rinodina lichens from South Korea, with an updated key to the species of Rinodina in the far eastern Asia. MycoKeys 87: 159-182. https://doi.org/10.3897/mycokeys.87.71524
Figure 5 Rinodina zeorina (BDNA-L-0000933, holotype for A–G; BDNA-L-0000668 for H–K) in morphology A–C habitus and apothecia on bark of Quercus mongolica. Thallus brownish and areolate and non-pruinose apothecia D well-developed amphithecium and pigmented hypothecium E epihymenium with brown pigment which extending to the cortical layer of amphithecium. Parathecium light brown at periphery F hypothecium with light (olive-)brown pigment G ascospores 1-septate, Dirinaria-type but lumina angular to globose H habitus and apothecia on bark of Tilia amurensis. Thallus more grayish I apothecial section representing well-developed amphithecium and pigmented hypothecium J asci clavate with eight spores K ascospores 1-septate, Dirinaria-type but lumina angular to globose. Scale bars: 1 mm (A–C); 200 μm (D); 50 μm (E, F); 10 μm (G); 1 mm (H); 200 μm (I); 10 μm (J, K).
Figure 2 from: Lee BG, Hur J-S (2022) Two new Rinodina lichens from South Korea, with an updated key to the species of Rinodina in the far eastern Asia. MycoKeys 87: 159-182. https://doi.org/10.3897/mycokeys.87.71524
Figure 2 Specific collection sites for two new species A habitat/landscape for R. salicisB habitat/landscape for R. zeorinaC location for R. salicis (a black star); locations for R. zeorina (two black diamonds).
Figure 4 from: Lee BG, Hur J-S (2022) Two new Rinodina lichens from South Korea, with an updated key to the species of Rinodina in the far eastern Asia. MycoKeys 87: 159-182. https://doi.org/10.3897/mycokeys.87.71524
Figure 4 Rinodina salicis (BDNA-L-0000558, holotype) in morphology A–D habitus and apothecia. Thallus olive-gray composed of tiny areoles and non-pruinose apothecia E well-developed amphithecium and algal layer extending to the base F asci clavate with eight spores G ascospores simple in the beginning and developed 1-septate, Pachysporaria-type II, rarely Physcia-type at mature. Scale bars: 1 mm (A–D); 200 μm (E); 10 μm (F, G).
Figure 1 from: Lee BG, Hur J-S (2022) Two new Rinodina lichens from South Korea, with an updated key to the species of Rinodina in the far eastern Asia. MycoKeys 87: 159-182. https://doi.org/10.3897/mycokeys.87.71524
Figure 1 Substrates of Rinodina species in the far eastern Asia. Rinodina species of the far eastern Asia occur mainly on bark, and the genera Quercus, Picea, Salix, Betula and Alnus are the main substrates for corticolous Rinodina species of the far eastern Asia.
FIGURE 1 in Rinodina riparia (Physciaceae, lichenized Ascomycota) new to Eurasia from China and Russia
FIGURE 1. Distribution of Rinodina riparia in Eurasia and North America.
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