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Figure 18 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Hallgass A, Lesicki A (2019) Exploration of phylogeography of Monacha cantiana s.l. continues: the populations of the Apuan Alps (NW Tuscany, Italy) (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 814: 115-149. https://doi.org/10.3897/zookeys.814.31583
Figure 18 Box plots for shell characters of the seven Monacha clades investigated. The lower and upper limits of the rectangular boxes indicate the 25th to 75th percentile range, and the horizontal line within the boxes is the median (50th percentile).
Figure 1 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Hallgass A, Lesicki A (2019) Exploration of phylogeography of Monacha cantiana s.l. continues: the populations of the Apuan Alps (NW Tuscany, Italy) (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 814: 115-149. https://doi.org/10.3897/zookeys.814.31583
Figure 1 Maximum Likelihood (ML) tree of combined COI and 16SrDNA haplotypes of Monachacantiana s.l. (see Table 4). Numbers next to the branches indicate bootstrap support above 50% calculated for 1000 replicates (Felsenstein 1985). The tree was rooted with M.cartusiana and M.parumcincta combined sequences obtained from GenBank (Table 4).
Figure 9 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 9 Cross-section of Microteaglochidiata fruit (Brazil, Bahia, Tucano Mun., 20 Feb 1992, A.M. de Carvalho & D.J.N. Hind 3841, PACA). A image of the cross-section B schematic representation. Abbreviations: P – pericarp; T – testa; TE – tegmen.
Figure 11 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 11 Microteadebilis: A general view of the plants (La Selva Biological Station, Costa Rica, 2001) B close-up of the inflorescence (La Selva Biological Station, Costa Rica, 2001). Photographs by Orlando Vargas Ramírez. See also https://sura.ots.ac.cr/florula4/find_sp3.php?key_species_code=LS001515.
Figure 6 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 6 Fruits and seeds of Microteasulcicaulis and M.bahiensis: A, B fruit of M.sulcicaulis, enclosed in the perianth (Paraguay, Caazapá Dept., Tavai, 7 Dec 1988, F. Mereles 2122, G) C, D seed of M.sulcicaulis (Paraguay, Caazapá Dept., Tavai, 7 Dec 1988, F. Mereles 2122, G) E, F fruit of M.bahiensis (Brazil, Bahia state, Salvador, Dunas de Itapuã, nr Hotel Stella Maris, N from Condomínio Alamedas da Praia, 8 Jun 1993, P. de Queiroz 3211, PACA) G, H seed of M.bahiensis (Brazil, Bahia state, Salvador, Dunas de Itapuã, nr Hotel Stella Maris, N from Condomínio Alamedas da Praia, 8 Jun 1993, P. de Queiroz 3211, PACA). Magnification: A, E – 30×, B, F – 100×, C, G – 50×, D, H – 300×.
Figure 8 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 8 Fruits and seeds of Microteamaypurensis and M.tenuifolia: A, B fruit of M.maypurensis, enclosed in the perianth (Bolivia, La Paz Dept., Beni river, Jul 1886, H.H. Rusby 1379, LE) C, D seed of M.maypurensis (Bolivia, La Paz Dept., Beni river, Jul 1886, H.H. Rusby 1379, LE) E, F fruit of M.tenuifolia enclosed in the perianth (Brazil, Minas Gerais, Serrra das Vertentes, Jun 1893, A. Glaziou 20437, B) G, H seed of M.tenuifolia (Brazil, Jacobina Mountains in Bahia, 1836, Blanchet 2588, P00798998). Magnification: A, E – 30×, B, F – 100×, C, G – 50×, D, H – 300×.
Figure 10 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 10 Classification of Microtea species by group average linkage algorithm of cluster analysis based on 13 characters. Black branches connect significantly (P < 0.05) different groups, red branches – insignificantly different groups.
Figure 1 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 1 The phylogenetic tree from maximum likelihood analysis of matK region sequences. The tree with the highest log likelihood (-2983.53) is shown. The analysis involved 18 nucleotide sequences. Codon positions included were 1st+2nd+3rd+Noncoding. There were a total of 828 positions in the final dataset.
Figure 17 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 17 Microteascabrida: A a fragment of the shoot (São Bento do Sul, Santa Catarina, Brazil, 23 Sep 2016) B inflorescence (São Bento do Sul, Santa Catarina, Brazil, 14 Dec 2013). Photographs by Paulo Schwirkowski.
Figure 7 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 7 Fruits and seeds of Microteaportoricensis and M.glochidiata: A, B fruit of M.portoricensis, enclosed in the perianth (Puerto Rico, Cabo Rojo, 1864, Grosourdy 13, P04598159) C, D seed of M.portoricensis (Puerto Rico, Cabo Rojo, 1864, Grosourdy 13, P04598159) E, F fruit of M.glochidiata (Brazil, Maranhão, Barao do Grajau, 21 Jan 2012, R.M. Harley et al. 56455, K) G, H seed of M.glochidiata (Brazil, Maranhão, Barao do Grajau, 21 Jan 2012, R.M. Harley et al. 56455, K). Magnification: A, E – 30×, B, F – 100×, C, G – 50×, D, H – 300×.
Figure 22 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 22 Lectotype of Ancistrocarpusschrankii (fig. 63 in Schrank, 1821). Image provided by the library of Biological Faculty, Lomonosov Moscow State University.
Figure 4 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 4 Fruits and seeds of Microteadebilis and M.celosioides: A, B fruit of M.debilis, enclosed in the perianth (St. Lucia, Soufrière, 1958, G.R. Proctor 17789, BM000019256) C, D seed of M.debilis (Honduras, nr Cangrejal river, foothills of Ceiba, 29 Jul 1938, T.G. Yuncker et al. 8674, G) E, F fruit of M.celosioides (Retiro das Pedras, Brumadinho, 14 Dec 1998, J.R. Stehmann & C.E.S. Ferreira 2399, PACA) G, H seed of M.celosioides (Retiro das Pedras, Brumadinho, 14 Dec 1998, J.R. Stehmann & C.E.S. Ferreira 2399, PACA). Magnification: A, E – 30×, B, F – 100×, C, G – 50×, D, H – 300×.
Figure 5 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 5 Fruits and seeds of Microteapapillosa and M.scabrida: A, B fruit of M.papillosa, enclosed in the perianth (Diamantina Mun., Estrada Conselheiro Mata, 11 Apr 1982, L. Rossi et al. 3322, PACA) C, D seed of M.papillosa (Diamantina Mun., Estrada Conselheiro Mata, 11 Apr 1982, L. Rossi et al. 3322, PACA) E, F fruit of M.scabrida, enclosed in the perianth (Paraguay, Alto Paraná, 1909, K. Fiebrig 5468, M) G, H seed of M.scabrida (Paraguay, Alto Paraná, 1909, K. Fiebrig 5468, M). Magnification: A, E – 30×, B, F – 100×, C, G – 50×, D, H – 300×.
Figure 3 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 3 Cross-section of the fruit of Microteaglochidiata, showing the embryo and perisperm covered by the tegmen (Brazil, Bahia, Tucano Mun., 20 Feb 1992, A.M. de Carvalho & D.J.N. Hind 3841, PACA). Abbreviations: P – pericarp with plumose outgrowths, T – testa of the seed coat (tegmen covers perisperm and embryo), PE – perisperm, E – embryo. Magnification – 50×.
Figure 2 from: Sukhorukov AP, Sennikov AN, Nilova MV, Mazei Y, Kushunina M, Marchioretto MS, Hanáček P (2019) Evolutionary relationships and taxonomy of Microtea (Microteaceae), a basal lineage in the core Caryophyllales. PhytoKeys 115: 1-50. https://doi.org/10.3897/phytokeys.115.29041
Figure 2 The phylogenetic tree from maximum likelihood analysis of ITS region sequences. The tree with the highest log likelihood (-2848.78) is shown. The analysis involved 9 nucleotide sequences. There were a total of 754 positions in the final dataset.
Figures 115-117 from: St Laurent RA, Kawahara AY (2019) Reclassification of the Sack-bearer Moths (Lepidoptera, Mimallonoidea, Mimallonidae). ZooKeys 815: 1-114. https://doi.org/10.3897/zookeys.815.27335
Figures 115-117 Adult specimens of Citrallaruminaa dorsal b ventral. 115 Male, Panama, Colón, Rio Indio Lodge (MGCL) 116 Female, Costa Rica, Guanacaste, Cafetal, 280 m, 90-SRNP-1981 (USNM) 117 Female, holotype, Panama, Volcán de Chiriquí, 2000–3000 ft (NHMUK). Scale bar: 1 cm.
Figure 3 from: Brock JR, Mandáková T, Lysak MA, Al-Shehbaz IA (2019) Camelina neglecta (Brassicaceae, Camelineae), a new diploid species from Europe. PhytoKeys 115: 51-57. https://doi.org/10.3897/phytokeys.115.31704
Figure 3 Trichomes of lowermost part of stem in Camelinaneglecta. Greenhouse-grown plants from seeds of Besancon s.n. (USDA accession 650135). Scale bar: 400 μm.
Figure 2 from: Meerow AW, Silverstone-Sopkin PA, Zuluaga-Tróchez A, Sánchez-Taborda JA (2019) A remarkable new species of Pamianthe (Amaryllidaceae) from the Department of Cauca, Colombia. PhytoKeys 115: 73-82. https://doi.org/10.3897/phytokeys.115.30755
Figure 2 Pamiantheecollis. A Androecium, with staminal cup B Tip of outer tepal, showing apex and adaxial protuberance C Adaxial protuberance, showing glandular papillae D Opened ovary with ovules (ovules in two locules are visible) E Infructescence of living plant F Seeds, showing variation in shape A–D, F photographs by Juan Felipe Ortega-Giraldo, Laboratorio de Imágenes del Postgrado en Ciencias-Biología, Universidad del Valle, Cali, Colombia E photo by Laura Clavijo.
Figure 2 from: Wu B, Liu C, Potter D, Cui D (2019) Taxonomic reconsideration of Prunus veitchii (Rosaceae). PhytoKeys 115: 59-71. https://doi.org/10.3897/phytokeys.115.29219
Figure 2 Univariate statistics with the minimum and maximum values for discriminating characters of Prunusveitchii and P.serrulatavar.pubescens. PS, P.serrulatavar.pubescens. PV, P.veitchii. A, Peduncle length (cm). B, Pedicel length (cm). C, Length of calyx tube (cm). D, Diameter of calyx tube top (cm). E, Length of calyx lobe (cm). F, Width of calyx lobe (cm). G, Ratio of length and width of calyx lobe. H, Petiole length (cm). I, Leaf length (cm). J, Leaf width (cm). K, Angle of leaf base (°). L, Angle of leaf apex (°). M, Length of leaf apex (cm). N, Ratio of leaf length and petiole length. O, Ratio of length and width of leaf.
Figure 2 from: Brock JR, Mandáková T, Lysak MA, Al-Shehbaz IA (2019) Camelina neglecta (Brassicaceae, Camelineae), a new diploid species from Europe. PhytoKeys 115: 51-57. https://doi.org/10.3897/phytokeys.115.31704
Figure 2 Mitotic chromosomes of Camelinaneglecta. Greenhouse-grown plants from seeds of Besancon s.n. (USDA accession 650135). Scale bar: 10 μm.
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Allen Brain Atlas
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