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549 results for “terrestrial isopods”

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zenodo28/100

Figure 1 from: Tajovský K, Štrichelová J, Tuf IH (2018) Terrestrial isopods (Oniscidea) of the White Carpathians (Czech Republic and Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 305-321. https://doi.org/10.3897/zookeys.801.24133

Figure 1 The zonation of Carpathians, with enlarged inset part of position of studied localities in CZ/SK White Carpathians. Source of the map of the Carpathian zones: https://commons.wikipedia.org/wiki/File:Mapcarpat2.png accessed 24.7.2018; the map with position of studied localities according to Google Maps.

opencc-by-4.0Dec 2018View details →
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Figure 3 from: Rudy J, Rendoš M, Ľuptáčik P, Mock A (2018) Terrestrial isopods associated with shallow underground of forested scree slopes in the Western Carpathians (Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. Title. ZooKeys 801: 323-335. https://doi.org/10.3897/zookeys.801.24113

Figure 3 Depth distribution of Mesoniscusgraniger. Site 1 is out of the species range. Study sites 4 and 5 were not depicted, because whole depth gradient was not represented (see locality description).

opencc-by-4.0Dec 2018View details →
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Figure 2 from: Rudy J, Rendoš M, Ľuptáčik P, Mock A (2018) Terrestrial isopods associated with shallow underground of forested scree slopes in the Western Carpathians (Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. Title. ZooKeys 801: 323-335. https://doi.org/10.3897/zookeys.801.24113

Figure 2 Ethylene glycol to formaldehyde ratio of sampled specimens from all study sites, where both fixating solutions were used.

opencc-by-4.0Dec 2018View details →
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Figure 3 from: Shultz JW (2018) A guide to the identification of the terrestrial Isopoda of Maryland, U.S.A. (Crustacea). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 207-228. https://doi.org/10.3897/zookeys.801.24146

Figure 3 Armadillidiidae. A–BArmadillidiumvulgareA head, dorsal view B posterior end of pleon, dorsal view C–EArmadillidiumnasatumC head, dorsal view D posterior end of pleon, dorsal view E Dorsal view. Abbreviations: ex exopodite of uropod; fp frontal projection; pl5 pleonal tergite V; pt pleotelson. Scale bar: 5 mm.

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Figure 2 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 2 Distribution of isopod species in different types of habitat. A Forest B Grassland C Connections: hedges D Compost E Humid zones. Shannon (H') and equitability (R') indices are written below each graph (from Souty-Grosset et al. 2008).

opencc-by-4.0Dec 2018View details →
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Figure 1 from: Rudy J, Rendoš M, Ľuptáčik P, Mock A (2018) Terrestrial isopods associated with shallow underground of forested scree slopes in the Western Carpathians (Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. Title. ZooKeys 801: 323-335. https://doi.org/10.3897/zookeys.801.24113

Figure 1 Location of the study sites. 1/ Borinka (Malé Karpaty Mts.), 2/ Belinské skaly (Cerová vrchovina Highlands), 3/ Drienok Valley, 4/ Slope next to the Malá drienčanská Cave, 5/ Collapse above the Veľká drienčanská Cave (three sites are in the Revúcka vrchovina Highlands), 6/ Vysoký vrch Hill, 7/ Doline next to Silická ľadnica Ice Cave (both sites in Slovak Karst), 8/ Malý Ružinok Valley (Čierna hora Mts.).

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Figure 2 from: Hassall M, Moss A, Dixie B, Gilroy JJ (2018) Interspecific variation in responses to microclimate by terrestrial isopods: implications in relation to climate change. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 5-24. https://doi.org/10.3897/zookeys.801.24934

Figure 2 A schematic representation of a typical thermal response curve for enzymes (simplified from Huey and Kingsolver 1989). The temperature optimum is the temperature at which performance reaches its maximal level or peak performance. The performance breadth defines how steeply peaked (stenothermal) or broadly plateaued (eurythermal) the response curve is. Any part or the whole of such a curve can be considered to be a reaction norm of a genotype representing a range of phenotypes expressed across an environmental gradient, in this example, of temperature.

opencc-by-4.0Dec 2018View details →
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Figure 1 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 1 Conceptual diagram illustrating some of the ways in which agricultural practices can influence various aspects of isopod ecology and how these might then potentially impact on ecosystem functions and ecosystem services.

opencc-by-4.0Dec 2018View details →
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Figure 1 from: Hassall M, Moss A, Dixie B, Gilroy JJ (2018) Interspecific variation in responses to microclimate by terrestrial isopods: implications in relation to climate change. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 5-24. https://doi.org/10.3897/zookeys.801.24934

Figure 1 A conceptual diagram illustrating some of the pathways by which changes in global climate could potentially impact on rates of carbon dioxide emissions from soils. Both changes in temperature and in the levels and patterns of rainfall have strong direct effects on the metabolism of bacteria and fungi but their ecology and metabolism are also regulated by the extent to which they are stimulated by soil animals. Both functional (e.g., behavioural and physiological) responses and numerical (both life history and population) responses of soil animals are affected by their microclimate. This is in turn affected by larger scale changes in temperature and rainfall. Therefore, as well as their direct effect on microbial metabolism, these climatic variables have a strong indirect effect by influencing the behavioural, physiological, life history, and population processes of soil animals such as isopods.

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Figure 5 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 5 Land cover map with sampling sites in Plaine Mothaise, central-western France. Land cover features of the study site were determined using aerial photographs (Google Earth) and field inspections. Linear characteristics from the landscape were distinguished such as riparian, hedge, continuous and intermittent vegetation. The final categories obtained are Cultivation (crops), Grassland, Poplars, Types of connection, roads and urban. Landscapes were mapped using Arcmap 9.3 (ESRI, 2004) as a main geographical information system. Black dots indicate sites of pitfall trap sampling.

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Figure 7 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 7 Growth of adult Armadillidiumvulgare fed with different types of leaf litter. A soybean B wheat C sunflower D pasture. Solid line: Linear growth model, d dashed lines: 95% confidence interval of the model (from Faberi et al. 2011).

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Figure 8 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 8 Mortality (Kaplan-Meier method) of adult Armadillidiumvulgare feeding on different types of leaf litter: soybean, wheat, sunflower, and pasture during development (from Faberi et al. 2011).

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Figure 3 from: Tajovský K, Štrichelová J, Tuf IH (2018) Terrestrial isopods (Oniscidea) of the White Carpathians (Czech Republic and Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 305-321. https://doi.org/10.3897/zookeys.801.24133

Figure 3 The ordination analysis (CANOCO 5, unconstrained analysis, DCA) of individual localities (1–43) in the White Carpathians according to present terrestrial isopod assemblages. For numbers of individual localities, see Materials and methods. Key: brown spots, forest localities; light green spots, meadows and pastures; yellow spots, localities of mixed meadows and woods.

opencc-by-4.0Dec 2018View details →
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Figure 6 from: Hassall M, Moss A, Dixie B, Gilroy JJ (2018) Interspecific variation in responses to microclimate by terrestrial isopods: implications in relation to climate change. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 5-24. https://doi.org/10.3897/zookeys.801.24934

Figure 6 Thermal reaction norm gradients for evaporation rate (water loss) for isopods from biomes differing in availability of moisture. Evaporation rate (g g-1 h-1× 10-2) standardised to a temperature range of 3.5 °C (from Edney 1951; Warburg 1965, 1987, 1989). Key to species: Lo Ligiaoceanica, Ph Philosciamuscorum, Oa Oniscusasellus, Ps Porcellioscaber, Av Armadillidiumvulgare, Ao Armadilloofficinalis, Aa Armadilloalbomarginatus, Po Porcellioolivieri, An Armadilliumnasatum, Ba Buddelundiaalbinogrisescens, Bf Buddelundiafrontosa, Va Veneziilloarizonicus, Bsp Buddelundia spp. probably lateralis, Hr Hemilepistusreaumurii, Sf Schizidiumfestai. Key to habitats: littoral (blue), mesic (green), xeric (yellow), semi-arid (orange) habitats in South Australia.

opencc-by-4.0Dec 2018View details →
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Figure 1 from: Szlavecz K, Vilisics F, Tóth Z, Hornung E (2018) Terrestrial isopods in urban environments: an overview. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 97-126. https://doi.org/10.3897/zookeys.801.29580

Figure 1 Publications on urban isopods in the past three decades. Source: Web of Science using the following keywords: terrestrial isopods, woodlice, oniscid, urban, anthropogenic A Number of publications per year B Frequency of publications by subdisciplines.

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Figure 2 from: Szlavecz K, Vilisics F, Tóth Z, Hornung E (2018) Terrestrial isopods in urban environments: an overview. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 97-126. https://doi.org/10.3897/zookeys.801.29580

Figure 2 Cities with records on urban isopod diversity. Names of cities with references are listed in Suppl. material 1: Table S1. Publications with isopod abundance but without species composition are not included in the map, but referenced elsewhere in the text.

opencc-by-4.0Dec 2018View details →
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Figure 4 from: Souty-Grosset C, Faberi A (2018) Effect of agricultural practices on terrestrial isopods: a review. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 63-96. https://doi.org/10.3897/zookeys.801.24680

Figure 4 Number of isopods collected at Fors in three seasons: spring (black bars), summer (grey bars) and autumn (white bars). Habitat abbreviations: CL: clover, AL: alfalfa, TG: temporary grasslands less than 5 years old PG: permanent grasslands more than 5 years old (PG) (from Souty-Grosset et al. 2005b).

opencc-by-4.0Dec 2018View details →
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Figure 4 from: Rudy J, Rendoš M, Ľuptáčik P, Mock A (2018) Terrestrial isopods associated with shallow underground of forested scree slopes in the Western Carpathians (Slovakia). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. Title. ZooKeys 801: 323-335. https://doi.org/10.3897/zookeys.801.24113

Figure 4 Comparison of warm and cold period sampling of Mesoniscusgraniger on study sites 2, 3, 6, 7.

opencc-by-4.0Dec 2018View details →
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Figure 5 from: Hassall M, Moss A, Dixie B, Gilroy JJ (2018) Interspecific variation in responses to microclimate by terrestrial isopods: implications in relation to climate change. In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 5-24. https://doi.org/10.3897/zookeys.801.24934

Figure 5 Gradients of moisture reaction norms for respiration of isopods differing in their resistance to desiccation. Reaction norms over the range 50–100% relative humidity for respiratory rates measured as rates of oxygen uptake (mm3 mm-2 body surface h-1) (Edney 1968). Key to species: Lo Ligiaoceanica, Oa Oniscusasellus, Ps Porcellioscaber, Av Armadillidiumvulgare. Key to habitats: littoral (blue), mesic (green).

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Figure 6 from: Kashani GM, Abedini A, Montesanto G (2018) Terrestrial isopods of the family Eubelidae Budde-Lund, 1899 from Iran, with description of a new species (Isopoda, Oniscidea). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 177-187. https://doi.org/10.3897/zookeys.801.23340

Figure 6 Somalodillo sp. A lateral view B cephalothorax and pereonite 1–2 in lateral view C cephalothorax in frontal view D pleon in dorsal view. Scale bar: 1 mm.

opencc-by-4.0Dec 2018View details →

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