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37 results for “Pocillopora damicornis”

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zenodo32/100

Figure 8. Pocillopora acuta. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 8. Pocillopora acuta. A, in situ appearance. B, skeleton of specimen. C and D, scanning electron micrographs of specimen (photos: Paul Muir). E, side view of corallum of holotype of Pocillopora acuta Lamarck, 1816 (photo: Michel Pichon). F, drawing by Esper (1791). G, P. acuta morph in situ. H, holotype of Pocillopora apiculata Ehrenberg, 1834. I, skeleton of compact morphology of P. acuta (MTQ-G66112).

opennotspecifiedJan 2014View details →
zenodo32/100

Figure 13. P in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 13. P. bairdi sp. nov. A, in situ appearance. B, skeleton of specimen. C and D, scanning electron micrographs of specimen. E, corallum of holotype (side view) (MTQ-G65918). F, corallum of paratype (side view) (MTQ-G65919). G, mosaic colony including holotype (left), P. meandrina (upper right), and P. damicornis (lower right). H, previous colony in situ.

opennotspecifiedJan 2014View details →
zenodo32/100

Figure 5. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 5. A, haplotype network based on ORF DNA sequence data and incorporating published Pocillopora sequence data from other locations across the Indian and Pacific Oceans (total alignment length 594 bp). B, geographical account of these lineages on a global scale based solely on genetic lineages.

opennotspecifiedJan 2014View details →
zenodo32/100

Figure 3. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 3. A, DAPC of gross morphological characters. Bi-plot indication of character (see Table 1 for explanation of characters) contribution is shown in blue. Individuals are represented by dots and groups by elipses. Box, cluster-based reassignment probabilities (dotted lines indicate probabilities if Type α is excluded from calculations). B, branch-based reassignment probabilities for each cluster; bars indicate genetic lineages [probability of reassignment of a branch (N = 133) (horizontal bars, y-axis) to a certain cluster (genetic lineage) (vertical bars, x-axis) is indicated by shades: white = 0, dark grey = 1]. Clusters: α, Pocillopora damicornis; β, P. acuta; e, P. eydouxi; m, P. meandrina; δ, P. aliciae; γ, P. verrucosa; x, P. bairdi sp. nov.

opennotspecifiedJan 2014View details →
zenodo32/100

Figure 1 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 1. Schematic illustration of morphometric measurements taken of corallum (side view). Numbers refer to morphometric measurements taken from each colony (see Table 1).

opennotspecifiedJan 2014View details →
dryad32/100

Data from: Genetic relatedness does not retain spatial pattern across multiple spatial scales: dispersal and colonization in the coral, Pocillopora damicornis

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publicApr 2013View details →
dryad32/100

Data from: Genetic diversity, clonality and connectivity in the scleractinian coral Pocillopora damicornis: a multi-scale analysis in an insular, fragmented reef system

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publicNov 2014View details →
dryad32/100

Data from: Impacts of temperature and lunar day on gene expression profiles during a monthly reproductive cycle in the brooding coral Pocillopora damicornis

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publicApr 2017View details →
dryad24/100

Data from: Population genetic structure of the Pocillopora damicornis morphospecies along Ningaloo Reef, Western Australia

The effective management of a coral reef system relies on a detailed understanding of the population structure of dominant habitat-forming species. For some corals, however, high levels of phenotypic plasticity have made species delineation based on morphological characteristics alone unreliable, suggesting that previous studies of population genetic structure may have been influenced by the inclusion of multiple genetic lineages in the analyses. We examined the population structure of the Pocillopora damicornis morphospecies along the World Heritage Ningaloo Coast, Western Australia, and recovered 2 mitochondrial haplotypes from sympatrically occurring colonies possessing morphological characteristics consistent with taxonomic classification of P. damicornis. Despite a high degree of genetic differentiation between these lineages, we detected low levels of unidirectional admixture between them, suggesting that reproductive barriers are not fully developed. We found dual modes of reproduction for both lineages with considerable variation in the contribution of sexual reproduction among sample sites. Lastly, we identified a high dispersal potential of sexually produced propagules in the most common lineage with positive spatial autocorrelation detected over distances up to 60 km. Based on these results, it appears that populations of P. damicornis have a high capacity to recover from environmental perturbations as long as the effects of disturbances are patchy across Ningaloo Reef.

opencc-zeroDec 2013View details →
dryad24/100

Data from: Depth as an organizing force in Pocillopora damicornis: intra-reef genetic architecture

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publicMar 2016View details →
dryad24/100

Data from: Population genetic structure of the Pocillopora damicornis morphospecies along Ningaloo Reef, Western Australia

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publicOct 2015View details →
zenodo20/100

Figure 16 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 16. Pocillopora cf. brevicornis. A, field appearance. B, specimen collected and photographed by Hoffmeister (1925).

opennotspecifiedJan 2014View details →
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Figure 14. Pocillopora eydouxi. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 14. Pocillopora eydouxi. A, skeleton of specimen (side view) (MTQ-G66118). B and C, scanning electron micrographs of specimen. D, in situ appearance. E, corallum of cylindrical morph (side view) (MTQ-G66119). F, illustration of holotype by Edwards & Haime (1860).

opennotspecifiedJan 2014View details →
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Figure 11. Pocillopora verrucosa. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 11. Pocillopora verrucosa. A, in situ appearance. B, skeleton of specimen. C and D, scanning electron micrographs of specimen (photos: Paul Muir). E, corallum of elongate 'damicornis-like' morph. F, colony at reef slope at Orpheus Island. G, corallum of holotype of Pocillopora danae (photo: Vaughan, 1918). H, corallum of holotype of Pocillopora hemprichii (side view). I, corallum collected at Lizard Island (side view) (MTQ-G66144).

opennotspecifiedJan 2014View details →
zenodo20/100

Figure 10. Pocillopora verrucosa. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 10. Pocillopora verrucosa. A, in situ. B, skeleton of branch. C and D, scanning electron micrographs (photos: Paul Muir). E, Madrepora damicornis Esper, 1791. F, specimen identified by Ehrenberg (1834) as P. verrucosa. G, sorallum of neotype (side view). H and I, scanning electron micrographs of neotype (MTQ-G65923).

opennotspecifiedJan 2014View details →
zenodo20/100

Figure 6. Pocillopora damicornis. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 6. Pocillopora damicornis. A, in situ. B, skeleton of branch (side view). C and D, scanning electron micrographs (photos: Paul Muir). E, eorallum of type specimen of P. favosa Ehrenberg, 1834 (side view). F and G, elongate morphs of P. damicornis (side view; MTQ-G66090). H, first illustration of P. damicornis by Gualtieri (1742).

opennotspecifiedJan 2014View details →
zenodo20/100

Figure 4 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics

Figure 4. Fine-scale skeletal differences between genetic lineages. Left: phylogeny based on ORF region resolving in four main clades (bootstrap values over 70 are shown as grey numbers). Right: scanning electron micrographs of different species (bar on the left indicates scale). Clade 1: Pocillopora damicornis Type α (P. damicornis), P. damicornis Type β (P. acuta), P. damicornis Type δ (P. aliciae); Clade 2: P. damicornis Type γ (P. verrucosa), Pocillopora Type x, P. bairdi sp. nov.; Clade 3: P. eydouxi e, P. meandrina m; Clade 4: P. damicornis Type ε (P. cf. brevicornis) (no micrograph available).

opennotspecifiedJan 2014View details →

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