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Supplementary material 4 from: Muller E, Dvořák M, Marçais B, Caeiro E, Clot B, Desprez-Loustau M-L, Gedda B, Lundén K, Migliorini D, Oliver G, Ramos AP, Rigling D, Rybníček O, Santini A, Schneider S, Stenlid J, Tedeschini E, Aguayo J, Gomez-Gallego M (2023) Conditions of emergence of the Sooty Bark Disease and aerobiology of Cryptostroma corticale in Europe. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 319-347. https://doi.org/10.3897/neobiota.84.90549
Zero-centred histogram of the residuals between simulated data and predictions of the model with the water balance (P-ETP) in the vegetative season (April-August) of the year preceding disease report as a predictor of the standardized record rate of the SBD
Supplementary material 4 from: Brockerhoff EG, Gresham BA, Meurisse N, Nahrung HF, Perret-Gentil A, Pugh AR, Sopow SL, Turner RM (2023) Pining away and at home: global utilisation of Pinus radiata by native and non-native insects. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 137-167. https://doi.org/10.3897/neobiota.84.95864
Percentages of species native to a region in each feeding guild, regardless of impact. Those in the "Native country: other" category are species native to other regions but not to Australia or New Zealand.
Supplementary material 6 from: Muller E, Dvořák M, Marçais B, Caeiro E, Clot B, Desprez-Loustau M-L, Gedda B, Lundén K, Migliorini D, Oliver G, Ramos AP, Rigling D, Rybníček O, Santini A, Schneider S, Stenlid J, Tedeschini E, Aguayo J, Gomez-Gallego M (2023) Conditions of emergence of the Sooty Bark Disease and aerobiology of Cryptostroma corticale in Europe. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 319-347. https://doi.org/10.3897/neobiota.84.90549
Zero-centred histogram of the residuals between simulated data and predictions of the model with the total sycamore maple basal area in a radius of 50 km from the sampler as a predictor of the number of Cryptostroma corticale spores detected in aerobiological samples
Supplementary material 2 from: Colombari F, Battisti A (2023) Citizen science at school increases awareness of biological invasions and contributes to the detection of exotic ambrosia beetles. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 211-229. https://doi.org/10.3897/neobiota.84.95177
Slides of the lecture on 'Monitoring of insect species harmful to trees and forests' and link to educational videos
Supplementary material 2 from: Muller E, Dvořák M, Marçais B, Caeiro E, Clot B, Desprez-Loustau M-L, Gedda B, Lundén K, Migliorini D, Oliver G, Ramos AP, Rigling D, Rybníček O, Santini A, Schneider S, Stenlid J, Tedeschini E, Aguayo J, Gomez-Gallego M (2023) Conditions of emergence of the Sooty Bark Disease and aerobiology of Cryptostroma corticale in Europe. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 319-347. https://doi.org/10.3897/neobiota.84.90549
Isolates which DNA was extracted and used to confirm the specificity of the primers ccITS2F and SBD3R and probe SBD5P
Supplementary material 8 from: Muller E, Dvořák M, Marçais B, Caeiro E, Clot B, Desprez-Loustau M-L, Gedda B, Lundén K, Migliorini D, Oliver G, Ramos AP, Rigling D, Rybníček O, Santini A, Schneider S, Stenlid J, Tedeschini E, Aguayo J, Gomez-Gallego M (2023) Conditions of emergence of the Sooty Bark Disease and aerobiology of Cryptostroma corticale in Europe. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 319-347. https://doi.org/10.3897/neobiota.84.90549
Probability of disease report in an area of 40-km to 130-km radius from the sampler as a function of the number of detected spores per day
FIGURE 10 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 10. Phylogenetic relationships of Carpophilus species from COI DNA sequences (Maximum Likelihood tree). New sequences obtained from Australian specimens in the present study are shown in bold text, with lifestages indicated. GenBank sequences are indicated by accession numbers in round brackets, with species identifications taken directly from GenBank, and countries of origin for the three C. dimidiatus complex species shown in square brackets. Additional sequences unable to be downloaded and included on this tree from the BOLD database match C. truncatus (>99%) originating from Israel (C. dimidiatus on BOLD, non-public data) and Carpophilus imitatus sp. nov. (100%) originating from Cambodia and South Korea (C. dimidiatus on BOLD, non-public data).
FIGURE 8 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 8. Additional species and characters used in dichotomous key A) Carpophilus sp., lateral head and pronotum B) Urophorus humeralis, lateral head and pronotum C) Brachypeplus sp., dorsal habitus, D) C. davidsoni dorsal habitus, E) C. dimidiatus, male paralectotype, dorsal habitus, (image taken by Michael Kuhlmann (ZMUK)), F) C. hemipterus, dorsal habitus, G) C. mutialtus, dorsal habitus, H) C. nepos, dorsal habitus, I) U. humeralis, dorsal habitus, J) C. obsoletus, dorsal habitus.
FIGURE 9 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 9. Additional characters used in dichotomous key. A) prosternum and mesosternal plate with carina, C. hemipterus, B) prosternum and mesosternal plate without carina, Carpophilus sp., C) metaventrite with large axillary space, C. marginellus, (photo image source from PaDIL (2022) website), D) metaventrite with small smooth axillary space, Carpophilus sp., E) tubercle on 9th segment of ♀, C. davidsoni, (illustration adapted from Leschen & Marris 2005, page 39), F) asymmetrical mandibles, male C. mutilatus, (illustration adapted from Leschen & Marris 2005, page 38), G) prosternum and hypomeron with extensive pitting, C. dimidiatus, (photo image source from Walker (2023) PaDIL website), H) prosternum and hypomeron smooth with little pitting, C. davidsoni, ….(photo image source from Walker (2023) PaDIL website), I) hind tibia, C. dimidiatus ♁ paralectotype, metatibia (image taken by Michael Kuhlmann (ZMUK)).
FIGURE 5. Fifth instar larvae, Carpophilus truncatus. A in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 5. Fifth instar larvae, Carpophilus truncatus. A) dorsal habitus, B) lateral habitus, C) ventral head, D) lateral head and pronotum, E) lateral abdomen, 9th segment with dorsal sclerotized plate, F) dorsal view of 9th abdominal segment dorsal sclerotized plate. mas: medial anterior setae, pgs: pregomphal setae; pg: pregomphus, sas: sublateral anterior setae; ug: urogomphus.
FIGURE 7 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 7. Carpophilus imitatus sp. nov., ♁ paratype (VAITC 8601), A) – G). A) dorsal habitus, B) lateral habitus, C) ventral habitus, D) prosternum and hypomeron, E) metatibia, F) paramere, lateral view, G) paramere, dorsal view. ♀ paratype (8607), H) – M). H) dorsal habitus, I) lateral habitus, J) ventral habitus, K) prosternum and hypomeron, L) metatibia, M) antenna.
FIGURE 6. Fifth larval instar, A in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 6. Fifth larval instar, A) C. hemipterus, dorsal habitus, B) C. hemipterus, lateral habitus, C) C. davidsoni, dorsal habitus, D) C. davidsoni, lateral habitus, E) C. hemipterus, lateral abdomen, 9th segment with dorsal sclerotized plate, F) C. hemipterus, dorsal abdomen, 9th segment, G) C. davidsoni, lateral abdomen, 9th segment with dorsal sclerotized plate, H) C. davidsoni, dorsal abdomen, 9th segment.
FIGURE 11 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 11. Phylogenetic relationships of Carpophilus species from 16S DNA sequences (Maximum Likelihood tree). New sequences obtained from Australian specimens in the present study are shown in bold text, with lifestage indicated. GenBank sequences are indicated by accession numbers in round brackets, with species identifications taken directly from GenBank, and countries of origin for the three C. dimidiatus complex species shown in square brackets
FIGURE 4 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 4. Carpophilus truncatus Scanning Electron Microscope (SEM) images, A) lateral habitus, B) ventral habitus, C) ventral prosternum, D) male metatibia with basal constriction.
FIGURE 1 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 1. Carpophilus truncatus syntype, ♁, A) dorsal habitus, B) lateral habitus, C) antenna, ventral view, D) prosternum and hypomeron, ventral view, E) metatibia, ventral view. C. jarjari, ♁, F) dorsal habitus, paratype, G) lateral habitus, holotype, H) antenna, ventral view, I) prosternum and hypomeron, ventral view, J) metatibia, ventral view.
FIGURE 2 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 2. Carpophilus truncatus syntype, ♁, A) paramere, lateral view, B) parameres, dorsal view, C) sternite VIII. C. jarijari holotype ♁, D) paramere, lateral view, E) parameres, dorsal view, F) sternite VIII.
FIGURE 3 in The pest sap beetle Carpophilus Myothorax truncatus Murray, 1864 (Coleoptera Nitidulidae)-a new synonymy and a related new species of Carpophilus
FIGURE 3. Carpophilus truncatus syntype, ♀, A) dorsal habitus, B) ventral habitus, C) prosternum and hypomeron in ventral view, D) metatibia, ventral view. C. jarijari paratype, ♀, E) dorsal habitus, F) ventral habitus, G) prosternum and hypomeron in ventral view, H) metatibia, ventral view, I) ovipositor.
Supplementary material 1 from: Seehausen ML, Branco M, Afonso C, Kenis M (2023) Testing a modified version of the EPPO decision-support scheme for release of classical biological control agents of plant pests using Ganaspis cf. brasiliensis and Cleruchoides noackae as case studies. NeoBiota 87: 121-141. https://doi.org/10.3897/neobiota.87.103187
Decision-support scheme for release of classical biological control agents of plant pests – Environmental impact assessment (EIA)
Fig. 3 in Ecological fitting: Chemical profiles of plant hosts provide insights on selection cues and preferences for a major buprestid pest
Fig. 3. Average time spent (s ± 1SE) of gravid emerald ash borer females (Agrilus planipennis) in arms of Y-tube olfactometer with foliage emissions of olive (OL, Olea europaea), white fringetree (WF, Chionanthus virginica), green ash (GA, Fraxinus pennsylvanica), Manchurian ash (MA, F. mandshurica) or blank air (BL). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Ecological fitting: Chemical profiles of plant hosts provide insights on selection cues and preferences for a major buprestid pest
Fig. 1. Mean emission rates of volatiles (ng/hour/g/foliage ± 1SE) of black ash (BA, Fraxinus nigra), blue ash (Blue, F. quadrangulata), Manchurian ash (MA, F. mandshurica), olive (OL, Olea europaea), and white fringetree (WF, Chionanthus virginicus), five plant hosts of emerald ash borer (Agrilus planipennis) collected in summer 2017. a) Overall plant profiles, b) antennally active compounds c) Green leaf volatile (GLV) profiles, d) sesquiterpene profiles, and e) Monoterpene profiles. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.