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14 results for “Calycina”
FIGURES 3–8 in First record of Calycina Blair, 1922 (Coleoptera, Mordellidae) in the Russian Far East with description of a new species
FIGURES 3–8. Details of Calycina horaki sp. n. (3–6), C. palpalis palpalis (Blair 1922) (7) and C. palpalis ruzzieri Leblanc 2013 (8). 3—head, dorsal view; 4—head, lateral view; 5—right antenna; 6—pronotum; 7, 8—male maxillary palpus (after Leblanc 2013). Scale bars for Figures 3, 4, 6 =1 mm. Scale bar for Figure 5 = 1 mm.
FIGURES 1–2 in First record of Calycina Blair, 1922 (Coleoptera, Mordellidae) in the Russian Far East with description of a new species
FIGURES 1–2. Calycina horaki sp. n., holotype. 1—habitus, dorsal view; 2—habitus, lateral view. Scale bar = 5 mm.
FIGURE 5 in Morpho-phylogenetic insights reveal Bisporella montana as Calycina montana comb. nov. (Pezizellaceae, Helotiales)
FIGURE 5. Calycina shangrilana (HMAS 275568, holotype). a A herbarium package b–c Apothecia on the woody substrate. d Cross sections of an apothecium. e Close up of hymenium at the margin. f Close up of ectal excipulum cells. g Filiform paraphyses (mounted in Congo red). h–j Asci (h, i mounted in Congo red, j mounted in Melzer's agent). k Tip of the ascus (J+, in Melzer's agent with KOH treatment). l Close up of croziers at the base of an immature ascus. m–n Ascospores (mounted in Congo red). Scale bars: b–c = 475 μm, d = 350 μm, e = 100 μm, f = 15 μm, g = 20 μm, h–j = 17 μm, k = 5 μm, l–n = 9 μm.
FIGURE 3 in Morpho-phylogenetic insights reveal Bisporella montana as Calycina montana comb. nov. (Pezizellaceae, Helotiales)
FIGURE 3. Calycina montana (MFLU 22-0055, new geographical record). a Close up of excipulum cells. b Ectal excipulum cells (b mounted in Congo Red). c Medullary excipulum cells. d–e Filiform paraphyses with refractive guttules. f–g Asci (mounted in Congo red). h Asci (alive state). i Close up of crozier. j Tip of the ascus (J+, in Melzerr's agent with KOH treatment). k–m Ascospores (m mounted in Congo red). Scale bars: a = 40 μm, b–c = 25 μm, d–h = 14 μm, i = 10 μm, j–m = 4 μm.
FIGURE 1 in Morpho-phylogenetic insights reveal Bisporella montana as Calycina montana comb. nov. (Pezizellaceae, Helotiales)
FIGURE 1. The phylogram of combined ITS and LSU sequence data for genera in Pezizellaceae. Maximum likelihood bootstrap values greater than 70% and posterior probability values greater than 0.95 given near the nodes. The new geographical record highlighted in red and type strains are in bold. The tree is rooted to Chlorencoelia torta (JAC 14068, KUSF 52256 and ICMP 21732).
FIGURE 2 in Morpho-phylogenetic insights reveal Bisporella montana as Calycina montana comb. nov. (Pezizellaceae, Helotiales)
FIGURE 2. Calycina montana (MFLU 22-0055, new geographical record). a Rotten wood substrates covered with mosses. b–c Apothecia on the substrate. d Close-up of an apothecium sectioning. e Close-up of hymenium at the margin. f Phialide cells on lower flank surface. g–h Conidiogenous cells bearing conidiospore i–j A conidiogenous cell (j Mounted in Congo red). Scale bars: b = 950 μm, c = 470 μm, d = 315 μm, e = 141 μm, f = 40 μm, g = 17 μm, h–j = 13 μm.
FIGURE 4 in Morpho-phylogenetic insights reveal Bisporella montana as Calycina montana comb. nov. (Pezizellaceae, Helotiales)
FIGURE 4. Calycina montana (HMAS 275566, holotype). a A herbarium package. b An apothecium on the woody substrate. c–d Cross sections of an apothecium (d mounted in Congo red). e Close up of hymenium at the margin. f Close up of ectal excipulum cells. g–h Filiform paraphyses (dead state). i–l Asci (k mounted in Melzer's agent, l mounted in Congo red). m Tip of the ascus (J+, in Melzer's agent with KOH treatment). n Close up of crozier at the base of an immature ascus. o–p Ascospores (o mounted in Congo red). Scale bars: b = 500 μm, c–d = 380 μm, e = 43 μm, f = 25 μm, g–h = 23 μm, i–l = 19 μm, m = 4 μm, n = 8 μm, m, o–p = 4 μm.
FIGURE 3 in Calycina alstrupii sp. nov. (Pezizellaceae, Helotiales), a new lichenicolous fungus from Norway
FIGURE 3. Calycina alstrupii (holotype, BILAS 10761). a, b ascomata on the underside of Lobaria pulmonaria thallus (scale in mm); c hyphoid-type excipular hyphae in K/I; d single ascus with ascospores and an ascospore in water; e asci and paraphyses pre-treated with K/I (c–e scale in μm); f Calycina-type apical apparatus observed in K/I.
FIGURE 1 in Calycina alstrupii sp. nov. (Pezizellaceae, Helotiales), a new lichenicolous fungus from Norway
FIGURE 1. Two locus (nuLSU+mtSSU) 50% majority rule consensus tree of selected members of Helotiales based on Bayesian approach and showing the position of Calycina alstrupii. The branches with posterior probabilities (PP) ≥ 0.95 are considered as supported. The abbreviations Pz162 and Pz167 at the tips of C. alstrupii denote lab codes of holo- and paratype respectively.
FIGURE 2. A in Calycina alstrupii sp. nov. (Pezizellaceae, Helotiales), a new lichenicolous fungus from Norway
FIGURE 2. A Bayesian phylogeny based on rDNA ITS sequences of selected members of Hyaloscyphaceae s. lato and showing Calycina alstrupii within Calycina-clade. The branches with posterior probabilities (PP) ≥ 0.95 are considered as supported. The abbreviations Pz162 and Pz167 at the tips of C. alstrupii denote lab codes of holo- and paratype respectively.
Fig. 2 in Exploration of genetic, morphological and essential oil variation reveals tools for the authentication and breeding of Salvia pomifera subsp. calycina (Sm.) Hayek
Fig. 2. Principal Coordinates Analysis based on the codominant genotypic distances of the S. pomifera subsp. calycina individuals from the five Peloponnese populations (pom1 (blue square): 1–10, pom2 (green rhombus): 11–20, pom3 (pink triangle): 21–30, pom4 (purple x): 31–39, pom5 (red circle): 40–49). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Exploration of genetic, morphological and essential oil variation reveals tools for the authentication and breeding of Salvia pomifera subsp. calycina (Sm.) Hayek
Fig. 3. Proportion of membership of each pre-defined population in each genetic group created by STRUCTURE for a. K = 2 and b. for K = 4. Every individual is represented by a vertical line divided into colours representing the different genetic groups (1–10: S. fruticosa populations, 11–15: S. pomifera subsp. calycina populations, last vertical line S. officinalis sample). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Exploration of genetic, morphological and essential oil variation reveals tools for the authentication and breeding of Salvia pomifera subsp. calycina (Sm.) Hayek
Fig. 1. Discriminant analysis based on the thirty-one essential oil components, present above 0.1 % in all Salvia pomifera subsp. calycina samples, with the population (pom1-pom5) as grouping variable.
Fig. 4 in Exploration of genetic, morphological and essential oil variation reveals tools for the authentication and breeding of Salvia pomifera subsp. calycina (Sm.) Hayek
Fig. 4. Principal Coordinates Analysis based on the pairwise Fst distances of the five Salvia pomifera subsp. calycina populations (pom1-5), the one Salvia officinalis commercial sample (OUT1) and the data obtained from ten Salvia fruticosa populations (p1-p10).
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