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Figure 7 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 7 - SEM images of Pachyseris inattesa sp. n. showing micro-morphological details. a Adjacent calices in series in specimen KAUST SA492 b Single calice in the same specimen as in a, the white arrow points at the single columellar process, which extends from the inner end of the radial elements reaching the fossa c Another calice in the same specimen (Figure 7a) with multiple columella processes (white arrows) extending from the inner end of the radial elements d A calice of specimen KAUST SA1305, the white arrows point at the finely ornamented columellar processes extending into the fossa from the inner end of the radial elements e Parallel and equal radial elements across a carina (top of the carina indicated by the dashed transparent white line) presenting the typical zigzag pattern of the margin (dashed grey line) f Detail of radial elements as in Figure 7e, showing the upper margin zigzag pattern (dashed grey line) and face ornamentation consisting of clumped granules (cg).
Figure 6 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 6 - Pachyseris inattesa sp. n. a KAUST SA426 b Holotype RMNH Coel. 41613 c View of the marginal part of the holotype in b d View of the central part of the holotype in b e KAUST SA678 f KAUST SA1301 g KAUST SA429.
Figure 4 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 4 - Pachyseris inattesa sp. n. in situ. a KAUST SA1300 b KAUST SA426 c KAUST SA887 d holotype RMNH Coel. 41613 e KAUST SA1284 f KAUST SA004 g KAUST SA1301 h KAUST SA1305.
Figure 5 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 5 - Development of carinae and series of calices in Pachyseris inattesa sp. n. in situ. a Well-developed carinae and elongated series of calices in specimen KAUST SA429 b Well-developed carinae and short series of calices in specimen KAUST SA887 c Poorly developed carinae and short series of calices in specimen KAUST SA1284 d Poorly developed carinae and long series of calices in specimen KAUST SA1293.
Figure 3 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 3 - Pachyseris speciosa. a The holotype USNM 119, West Indies b Specimen UNIMIB SO020, Socotra Island c Detail of the holotype showing parallel carinae and alternating radial elements d Detail of the specimen in b e SEM image of IRD HS2673, white arrows point at one of the spatula-shaped processes extending from the inner end of the radial elements and forming the columella f SEM image of the same specimen (Figure 3e) in a portion where columella processes are fused to form a continuous structure (white arrow) g SEM image of IRD HS2263 showing the ornamentation of the radial elements consisting of vertically fused granules (vfg) seen from above and the zigzag pattern of the radial element margin (dashed line) h SEM image of IRD HS2673 showing the radial element zigzag pattern (dashed line) and face ornamentation consisting of clumped granules (cg), vertically fused granules (vfg), and menianae (me).
Figure 2 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 2 - Pachyseris rugosa. a Lateral view of colony IRD HS1442 b Lateral view of colony IRD HS152 showing very irregular fronds and carinae c Detail of the fronds of specimen IRD HS152 d Specimen IRD HS221, white arrow points at a dash-like columella e SEM image of IRD HS2594, white arrows point at the fused dissepiments connecting the inner end of the radial elements and the reduced columellae f SEM image of ornamentation on radial elements showing single granules (sg), clumped granules (cg) and menianae (me).
Figure 9 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 9 - Pachyseris and Agariciidae phylogenetic reconstruction inferred from Bayesian inference analysis of mitochondrial intergenic spacer between COI and 16S-rRNA. Specimens identified as Pachyseris inattesa sp. n., Pachyseris rugosa and, Pachyseris speciosa are highlighted in pink, green and blue, respectively. Specimens of Leptoseris foliosa are indicated in bold. Uppercase letters A, B, and C delineate Pachyseris lineages. Clade numbers IV and VII are as reported by Fukami et al. (2008). Node values are Posterior Bayesian probabilities (>0.8), ML (>80%) bootstrap values, MP (>50%) bootstrap values. Posterior Bayesian probabilities below 0.8, ML bootstrap values below 80%, and MP bootstrap values below 50% are indicated by a dash (-). Siderastrea radians was selected as outgroup.
Figure 11 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 11 - In situ and corallum images of a and d Pachyseris speciosa b and e Pachyseris inattesa sp. n., c and f Leptoseris mycetoseroides in the Red Sea.
Figure 1 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 1 - Colonies of Pachyseris rugosa (a–c) and Pachyseris speciosa (d–g) in situ. a Image of the whole colony of specimen IRD HS2893, Prony Bay, New Caledonia b Lateral view of the fronds of specimen IRD HS2594, Prony Bay, New Caledonia c Fronds of specimen IRD HS2856 viewed from above, Prony Bay, New Caledonia d Tiers of foliose projections of a colony from New Caledonia e Image of specimen UNIMIB SO040, Socotra Island f Part of specimen KAUST SA714, Saudi Arabia g Detail of a colony with reduced carinae and brightly colored polyp mouths, growing in very turbid environment, Banc des Japonais, New Caledonia.
Figure 10 from: Terraneo T, Berumen M, Arrigoni R, Waheed Z, Bouwmeester J, Caragnano A, Stefani F, Benzoni F (2014) Pachyseris inattesa sp. n. (Cnidaria, Anthozoa, Scleractinia): a new reef coral species from the Red Sea and its phylogenetic relationships. ZooKeys 433: 1-30. https://doi.org/10.3897/zookeys.433.8036
Figure 10 - SEM images of Pachyseris inattesa sp. n. (a, c, e) and Leptoseris foliosa (b, d, f) a and b similar arrangement of adjacent calices in specimen KAUST SA1305 and IRD HS2854, respectively c and d calices the same specimens as in a and b, respectively e and f lateral ornamentation of the radial elements (light blue arrows) and pattern of their upper margin in specimens (yellow dashed lines) as in a and b, respectively.
Figure 3 from: Md Zain B, Muhammad Abu Bakar A, Ruslin F, vui fui v, Abu M, Japning J, Abdul-Patah p, lakim m, Roos C, Yaakop S (2014) Phylogenetic relationships of Malaysia's long-tailed macaques, Macaca fascicularis, based on cytochrome b sequences. ZooKeys 407: 121-139. https://doi.org/10.3897/zookeys.407.6982
Figure 3 - Neighbor joining phylogenetic tree using Kimura-2-Parameter algorithm with bootstrap values indicated on the branch.
Figure 1 from: Md Zain B, Muhammad Abu Bakar A, Ruslin F, vui fui v, Abu M, Japning J, Abdul-Patah p, lakim m, Roos C, Yaakop S (2014) Phylogenetic relationships of Malaysia's long-tailed macaques, Macaca fascicularis, based on cytochrome b sequences. ZooKeys 407: 121-139. https://doi.org/10.3897/zookeys.407.6982
Figure 1 - Distribution of the long-tailed macaque (Macaca fascicularis) in Southeast Asia (Gumert et al. 2011).
Figure 4 from: Md Zain B, Muhammad Abu Bakar A, Ruslin F, vui fui v, Abu M, Japning J, Abdul-Patah p, lakim m, Roos C, Yaakop S (2014) Phylogenetic relationships of Malaysia's long-tailed macaques, Macaca fascicularis, based on cytochrome b sequences. ZooKeys 407: 121-139. https://doi.org/10.3897/zookeys.407.6982
Figure 4 - The Bootstrap 50% majority rule consensus maximum parsimony tree of Macaca fascicularis populations. Bootstrap values are indicated on the branch.
Figure 5 from: Md Zain B, Muhammad Abu Bakar A, Ruslin F, vui fui v, Abu M, Japning J, Abdul-Patah p, lakim m, Roos C, Yaakop S (2014) Phylogenetic relationships of Malaysia's long-tailed macaques, Macaca fascicularis, based on cytochrome b sequences. ZooKeys 407: 121-139. https://doi.org/10.3897/zookeys.407.6982
Figure 5 - Bayesian inference of the 50% majority rule consensus tree of Cyt b sequence of Macaca fascicularis populations with Bayesian posterior probability (PP) are accordingly indicated on the branch.
Figure 4 from: Morton CM (2015) Phylogenetic relationships of Zieria (Rutaceae) inferred from chloroplast, nuclear, and morphological data. PhytoKeys 44: 15-38. https://doi.org/10.3897/phytokeys.44.8393
Figure 4 - Bayesian majority rule consensus tree using molecular and morphological data. Numbers above the nodes are posterior probability values. A–F at the end of the taxa names corresponds to Armstrong (2002) classification system. The 1-8 listed on the tree corresponds to this study's finding.
Figure 2 from: Morton CM (2015) Phylogenetic relationships of Zieria (Rutaceae) inferred from chloroplast, nuclear, and morphological data. PhytoKeys 44: 15-38. https://doi.org/10.3897/phytokeys.44.8393
Figure 2 - The strict MP consensus tree (L. = 749 steps, CI = 0.57, RI = 0.39) obtained from all molecular data. Numbers above nodes are bootstrap values.
Figure 1 from: Morton CM (2015) Phylogenetic relationships of Zieria (Rutaceae) inferred from chloroplast, nuclear, and morphological data. PhytoKeys 44: 15-38. https://doi.org/10.3897/phytokeys.44.8393
Figure 1 - MP majority rule consensus tree of the expanded trnL-trnF dataset using a broad sampling of genera of Rutaceae as well as Simaba (Simaroubaceae) and Swietenia (Meliaceae) as outgroups. Numbers below nodes are bootstrap values.
Figure 3 from: Morton CM (2015) Phylogenetic relationships of Zieria (Rutaceae) inferred from chloroplast, nuclear, and morphological data. PhytoKeys 44: 15-38. https://doi.org/10.3897/phytokeys.44.8393
Figure 3 - MP majority rule consensus tree using molecular and morphological data. Numbers below nodes are bootstrap values.
Figure 3 from: Dogan B, Duran A, Çetin Ö, Öztürk M, Martin E (2015) Study of phylogenetic relationship of Turkish species of Klasea (Asteraceae) based on ISSR amplification. PhytoKeys 56: 29-40. https://doi.org/10.3897/phytokeys.56.5608
Figure 3 - Principal co-ordinate analysis (PCA) of Klasea, Serratula, Centaurea and Jurinea species. 1 Serratula tinctoria 2 Klasea quinquefolia 3 Klasea oligocephala 4 Klasea kotschyi 5 Klasea serratuloides 6 Klasea erucifolia 7 Klasea lasiocephala 8 Klasea cerinthifolia 9 Klasea grandifolia 10 Klasea radiata subsp. radiata 11 Klasea hakkiarica 12 Klasea haussknechtii 13 Klasea coriaceae 14 Klasea radiata subsp. radiata 15 Klasea kurdica 16 Klasea bornmuelleri 17 Centaurea ptosimopappoides 18 Centaurea straminicephala 19 Jurinea cataonica
Figure 1 from: Dogan B, Duran A, Çetin Ö, Öztürk M, Martin E (2015) Study of phylogenetic relationship of Turkish species of Klasea (Asteraceae) based on ISSR amplification. PhytoKeys 56: 29-40. https://doi.org/10.3897/phytokeys.56.5608
Figure 1 - Representative agarose gels where PCR products were amplified with the primers ISSR F5 (highest number of polymorphic bands, top) and ISSR F5 (lowest level of polymorphic bands, down). 1 Serratula tinctoria 2 Klasea quinquefolia 3 Klasea oligocephala 4 Klasea kotschyi 5 Klasea serratuloides 6 Klasea erucifolia 7 Klasea lasiocephala 8 Klasea cerinthifolia 9 Klasea grandifolia 10 Klasea radiata subsp. radiata 11 Klasea hakkiarica 12 Klasea haussknechtii 13 Klasea coriaceae 14 Klasea radiata subsp. radiata 15 Klasea kurdica 16 Klasea bornmuelleri 17 Centaurea ptosimopappoides 18 Centaurea straminicephala 19 Jurinea cataonica, M: marker.
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