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129 results for “Island biodiversity”
Figure 11 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 11 Comparative figure of Sphaerosyllis palpopapillata (holotype, ZMH P-20751) (a) and Prosphaerosyllis modinouae sp. nov. (b, c). Scale bars: 1 mm.
Figure 10 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 10 Prosphaerosyllis modinouae sp. nov. (paratype NHM.2018.24386) a simple dorsal chaeta from anterior chaetiger b simple dorsal chaeta from posterior chaetiger c simple ventral chaeta from posterior chaetgier d dorsalmost falciger from anterior chaetiger e ventralmost falciger from anterior chaetiger f dorsalmost chaeta from mid body chaetiger g falcigers from posterior chaetiger. Scale bar: 50 µm.
Figure 2 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 2 Harmothoe anderssoni (voucher NHM.2018.24629, unless stated otherwise) a complete specimen (in two fragments) in dorsal view b SEM micrograph of the complete specimen in dorsal view (voucher, NHM.2018.21524) c detail of prostomium in dorsal view d pygidium with pygidial cirri in ventral view. Scale bars: 1 mm (a, d); 2 mm (b).
Figure 15 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 15 Chaetae of Apistobranchus jasoni sp. nov. (holotype NHM.2018.12712) a abdominal chaetiger b detail of neuropodial acicular chaeta and accompanying capillary c, d overview of neuropodial chaetal fascicle with long capillaries with frayed (damaged) tips and short falcate chaetae e detail short falcate neurochaetae. Scale bar: 250 µm (a); 25 µm (b); 100 µm (c–e).
Figure 23 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 23 Aphelochaeta falklandica sp. nov. (holotype NHM.2018.21708), Methyl Green Staining patterns a complete specimen b ventral view of thoracic chaetigers showing methyl green stained bands across the thorax c dorsal view of head and thoracic chaetigers d close up of head region e dorsal view of anterior of specimen stained with Shirla stain showing dorsal tentacles f detail of pygidial region showing anal lobes. Scale bars: 1 mm (a).
Figure 3 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 3 Harmothoe anderssoni (voucher, NHM.2018.24629) a mid-body parapodium, insert showing line drawing of supra-acicular neuropodial lobe b bidentate neurochaetae c unidentate neurochaetae d mid-body elytron showing elongated marginal papillae e detail of elytral surface from mid-body elytron showing multifid macrotubercules. Scale bars: 500 µm (a, d); 50 µm (b, c); 200 µm (e).
Figure 8 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 8 Drawing of anterior end of Prosphaerosyllis modinouae sp. nov. in dorsal view (a) and detail of palps (b).
Figure 14 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 14 Apistobranchus jasoni sp. nov. Illustrations of holotype (NHM.2018.12712) a anterior end in dorsal view b anterior end in lateral view and c detail of chaetigers 4 to 10 (numbered). Scale bar: 1 mm.
Figure 22 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 22 Aphelochaeta cf. longisetosa Falkland Islands specimen – MGSP plate a ventrolateral view of anterior end b dorsal view of anterior end.
Figure 1 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 1 Map showing exploratory oil field (Sea Lion) in North Falklands Basin and exploratory oil wells in East Falklands Basin from which samples in this study were collected.
Figure 5 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 5 Prosphaerosyllis modinouae sp. nov. (paratype, NHM.2018.24386) a complete specimen in dorsal view b detail of anterior end in dorsal view c detail of prostomium and palps in dorsal view d detail of eyes e anterior dorsal cirrus f posterior dorsal cirrus g posterior parapodium (arrow marking acicula) h detail of acicula. Scale bars: 1000 µm (a); 100 µm (b, c); 25 µm (e, f); 50 µm (g).
Figure 19 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 19 Comparison of Leitoscoloplos olei sp. nov. and L. kerguelensisaL. olei sp. nov., holotype (NHM.2018.21756) in lateral view b comparison of L. olei sp. nov. and one of the syntypes (BMNH.ZK.1885.12.1.252) of L. kerguelensis, both specimens in lateral view. Scale bars: 1mm.
Figure 6 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 6 Prosphaerosyllis modinouae sp. nov. (holotype, NHM.2018.25100; specimen Shirla-stained) a complete specimen in dorsal view b pattern of dorsal body papillae (= darkly stained dots) in anterior end c pattern of dorsal body papillae (= darkly stained dots) in mid-body segments d pattern of ventral papillae (= darkly stained dots). Scale bars: 500 µm (a); 200 µm (b, d).
Figure 25 from: Neal L, Paterson GLJ, Blockley D, Scott B, Sherlock E, Huque C, Glover AG (2020) Biodiversity data and new species descriptions of polychaetes from offshore waters of the Falkland Islands, an area undergoing hydrocarbon exploration. ZooKeys 938: 1-86. https://doi.org/10.3897/zookeys.938.49349
Figure 25 Dodecaceria saeria sp. nov. (holotype NHM.2018.23622) a general views of anterior and posterior ends of worm b close-up of anterior c pygidium d chaetae of mid-body chaetiger e tube.
FIG. 3 in Myxomycete biodiversity on five islands of the Seychelles
FIG. 3. Distribution of myxomycete specimens by elevation on five islands in the Seychelles.
FIG. 2 in Myxomycete biodiversity on five islands of the Seychelles
FIG. 2. The distribution of myxomycetes by areas subject to different levels of human impact.
Data from: Approximate Bayesian computation reveals the crucial role of oceanic islands for the assembly of continental biodiversity
The perceived low levels of genetic diversity, poor interspecific competitive and defensive ability, and loss of dispersal capacities of insular lineages have driven the view that oceanic islands are evolutionary dead ends. Focusing on the Atlantic bryophyte flora distributed across the archipelagos of the Azores, Madeira, the Canary Islands, Western Europe, and northwestern Africa, we used an integrative approach with species distribution modeling and population genetic analyses based on approximate Bayesian computation to determine whether this view applies to organisms with inherent high dispersal capacities. Genetic diversity was found to be higher in island than in continental populations, contributing to mounting evidence that, contrary to theoretical expectations, island populations are not necessarily genetically depauperate. Patterns of genetic variation among island and continental populations consistently fitted those simulated under a scenario of de novo foundation of continental populations from insular ancestors better than those expected if islands would represent a sink or a refugium of continental biodiversity. We, suggest that the northeastern Atlantic archipelagos have played a key role as a stepping stone for transoceanic migrants. Our results challenge the traditional notion that oceanic islands are the end of the colonization road and illustrate the significant role of oceanic islands as reservoirs of novel biodiversity for the assembly of continental floras.
Fig. 5 in Meiofaunal Biodiversity In A Marine Protected Area: A Case Study In The Rocky And Sedimentary Shores Of The Snake Island (North-Western Black Sea)
Fig. 5. The average density (N, means ± SE ind.·m–2) and biomass (B, means ± SE mg·m–2) of each meiobenthic taxon in the different habitats of the Snake Island MPA (Black Sea).
Data from: Studying biodiversity-ecosystem function relationships in experimental microcosms among islands
<p>Ecological studies on islands have provided fundamental insights into the mechanisms underlying biodiversity of larger organisms, but we know little about the factors affecting island microbial biodiversity and ecosystem function. We conducted a field experiment on five Baltic Sea islands where we placed aquatic microcosms with different levels of salinity mimicking environmental stress and allowed diatoms to colonize the microcosms via air. Using structural equation models (SEM), we investigated the interconnections among environmental and dispersal-related factors, diatom biodiversity, and ecosystem productivity (represented by chlorophyll a concentration). We also tested whether the body size structure of the community influences productivity together with biodiversity. In SEMs, we found no relationship between species richness or evenness and productivity. Rather, productivity increased with increasing mean body size of species in the communities. The effects of environmental stress on both biodiversity and ecosystem productivity were highlighted as species richness and evenness declined, whereas productivity increased at the highest salinity levels. In addition to salinity, wind exposure affected both biodiversity metrics and productivity. This study provides new insights into microbial community assembly in a field experimental setting and the relationship between biodiversity and ecosystem function. Our results indicate that salinity presents a strong abiotic filter, leading to communities that may be species-poor, yet comprise salinity-tolerant and relatively productive species at high salinity. Our findings also emphasize the importance of mean community body size in mediating the effects of environmental conditions on productivity and suggest that this trait should be considered more broadly in biodiversity-ecosystem function studies.</p>
Fig. 1 in Integrative biodiversity inventory of ants from a Sicilian archipelago reveals high diversity on young volcanic islands (Hymenoptera: Formicidae)
Fig. 1 Map of the sampling locations for the specimens used in this study.
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International Brain Laboratory public data
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OpenNeuro
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