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1,769 results for “Coccinellidae”
Figura 2 in Polimorfismo y dimorfismo sexual de Hippodamia variegata (Goeze) (Coleoptera: Coccinellidae) en la Región Arequipa, Perú
Figura 2. Esquema del pronoto de H. variegata con algunos patrones de color hallados, con diferente grado de melanización: a) 64,76%; b) 66,72%; c) 68,24%; d) 68,88%; e) 69,92%; f) 70,10%; g) 70,22%; h) 70,84%; i) 71,45%; j) 72,61%; k) 72,74%; l) 72,90%; m) 73,59%; n) 73,93%; o) 75,38%; p) 75,62%; q) 75,69%; r) 76,63%, s) 78,72%; t) 82,53%.
Figura 1 in Polimorfismo y dimorfismo sexual de Hippodamia variegata (Goeze) (Coleoptera: Coccinellidae) en la Región Arequipa, Perú
Figura 1. Esquema de los élitros de H. variegata con los diferentes patrones de color hallados y sus respectivas USM. a) – b) Élitros con 4 manchas: a) Sin fusiones; 4 USM. b) Fusión 2; 5 USM. c) – g) Élitros con 6 manchas: c) Sin fusiones, 6 USM. d) Fusión 1; 7 USM. e) Fusión 2; 7 USM. f) Fusión 1 y 2; 8 USM. g) Fusión 1; 2 y 3; 9 USM.
Figura 3 in Polimorfismo y dimorfismo sexual de Hippodamia variegata (Goeze) (Coleoptera: Coccinellidae) en la Región Arequipa, Perú
Figura 3. Esquema del rostro de H. variegata con algunos patrones de color hallados, con diferente grado de melanización: a) – c) Machos: a) 21,96%; b) 30,48%; c) 32,54%. d) – l) Hembras: d) 52,18%; e) 59,30%; f) 64,34%; g) 66,29%; h) 73,43%; i) 74,42%; j) 76,86%; k) 77,42%; l) 78,72%.
Figure 4 in Daily consumption and functional response of Stethorus gilvifrons (Coleoptera: Coccinellidae) and Orius albidipennis (Hemiptera: Anthocoridae) to Tetranychus urticae (Acari: Tetranychidae)
Figure 4. Proportion of T. urticae eggs consumed by adults of: a) O. albidipennis, b) S. gilvifrons, when provided by different prey densities.
Figure 3 in Daily consumption and functional response of Stethorus gilvifrons (Coleoptera: Coccinellidae) and Orius albidipennis (Hemiptera: Anthocoridae) to Tetranychus urticae (Acari: Tetranychidae)
Figure 3. Proportion of T. urticae eggs consumed by immatures of: a) O. albidipennis, b) S. gilvifrons, when provided by different prey densities.
Figure 2 in Daily consumption and functional response of Stethorus gilvifrons (Coleoptera: Coccinellidae) and Orius albidipennis (Hemiptera: Anthocoridae) to Tetranychus urticae (Acari: Tetranychidae)
Figure 2. Proportion of T. urticae protonymphs consumed by different life stages of: a) O. albidipennis, b) S. gilvifrons, when provided by different prey densities.
Figure 1 in Daily consumption and functional response of Stethorus gilvifrons (Coleoptera: Coccinellidae) and Orius albidipennis (Hemiptera: Anthocoridae) to Tetranychus urticae (Acari: Tetranychidae)
Figure 1. Proportion of T. urticae females consumed by different life stages of: a) O. albidipennis, b) S. gilvifrons, when provided by different prey densities.
Fig. 12 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 12. Toxotoma gonzalezi sp. nov. A. Holotype (MNHW), ♂, abdomen. B. Paratype (MNHW), ♀, abdomen. C. Holotype (MNHW), ♂, tergite VIII. D. Holotype (MNHW), ♂, ventrite 6. E. Paratype (MNHW), ♀, tergite VIII. F. Paratype (MNHW), ♀, ventrite 6. G. Holotype (MNHW), penis, lateral view. H. Holotype (MNHW), penis tip, lateral view. I. Holotype (MNHW), penis tip, inner view. J. Paratype (MNHW), ♀ genitalia, ventral view. K. Holotype (MNHW), ♂, segments IX and X, dorsal view. L. Holotype (MNHW), tegmen, lateral view. M. Holotype (MNHW), tegmen, inner view.
Fig. 13 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 13. Hyperaspis rutai sp. nov. A. Holotype (MNHW), ♂, abdomen. B. Holotype (MNHW), ♂, tergite VIII. C. Paratype (MNHW), ♀, abdomen. D. Paratype (MNHW), ♀, tergite VIII. E. Paratype (MNHW), ♀, ventrite 6. F. Holotype (MNHW), ♂, segments IX and X, dorsal view. G. Holotype (MNHW), penis, lateral view. H. Paratype (MNHW), female genitalia, ventral view. I. Holotype (MNHW), penis tip, lateral view. J. Holotype (MNHW), penis tip, inner view. K. Holotype (MNHW), tegmen, inner view. L. Holotype (MNHW), tegmen, lateral view.
Fig. 11. Epilachna obtusiforma Gordon, 1975 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 11. Epilachna obtusiforma Gordon, 1975, ♂ (MIZ). A. Ventrite 6. B. Tergite VIII. C. Penis, lateral view. D. Penis tip, lateral view. E. Penis tip, inner view. F. Segments IX and X, dorsal view. G. Tegmen, lateral view. H. Tegmen, inner view.
Fig. 9 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 9. Siola atra González, 2015 (MIZ). A. Penis, lateral view. B. Penis tip, lateral view. C. Tegmen, inner. D. ♂, segments IX and X, dorsal view. E. Tegmen, lateral view. F. ♀, spermatheca. G. ♀, genitalia, ventral view.
Fig. 8 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 8. Exoplectra misahualli sp. nov., ♂, holotype (MNHW). A. Abdomen. B. Inner surface of abdomen. C. Segment VIII, ventral view. D. Penis, lateral view. E. Penis tip, lateral view. F. Segments IX and X, dorsal view. G. Tegmen, inner view. H. Tegmen, lateral view. I. Penis guide apex, lateral view. J. Paramere apex, inner. view.
Fig. 7 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 7. Chnoodes yanayacu sp. nov. A. Paratype (MNHW), ♀, abdomen. B. Holotype (MNHW), ♂, abdomen. C. Paratype (MNHW), ♀, tergite VIII. D. Paratype (MNHW), ♀, sternite VIII. E. Holotype (MNHW), ♂, tergite VIII. F. Holotype (MNHW), ♂, sternite VIII. G. Paratype (MNHW), spermatheca. H. Paratype (MNHW), ♀, genitalia, ventral. I. Holotype (MNHW), penis, lateral. J. Holotype (MNHW), penis tip, inner view. K. Holotype (MNHW), penis tip, lateral view. L. Holotype (MNHW), ♂, segments IX and X, dorsal view. M. Holotype (MNHW), tegmen, lateral view. N. Holotype (MNHW), tegmen, inner view.
Fig. 5. Habitus. A–C in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 5. Habitus. A–C. Eupalea borowieci sp. nov., ♂, holotype (MNHW). A. Dorsal view. B. Lateral view. C. Frontal view. D–F. Psyllobora marshalli Crotch, 1874, sex (MNHW). D. Dorsal view. E. Lateral view. F. Frontal view. G–I. Chnoodes yanayacu sp. nov., ♂, holotype (MNHW). G. Dorsal view. H. Lateral view. I. Frontal view. J–L. Exoplectra misahualli sp. nov., ♂, holotype (MNHW). J. Dorsal view. K. Lateral view. L. Frontal view.
Fig. 3. SEM images. A–D in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 3. SEM images. A–D. Eupalea borowieci sp. nov., paratype (MIZ). E. Hyperaspis rutai sp. nov., paratype (MIZ). F. Hinda ecuadorica Gordon & Canepari, 2013, ♂, (MIZ). A. Head and pronotum. B. Head, ventral. C. Prosternum and mesoventrite. D. Habitus, ventral view. E. Head, dorsal view. F. Distal part of abdomen, ventral view.
Fig. 2 in New Coccinellidae (Coleoptera, Coccinelloidea) from Napo Province in Ecuador
Fig. 2. Cyrea mcclarini sp. nov. A. Paratype (MIZ), ♀, abdomen. B. Holotype (MNHW), ♂, abdomen. C. Holotype (MNHW), ♂, tergite VIII. D. Paratype (MIZ), ♀, genitalia, ventral view. E. Paratype (MIZ), ♀, genitalia, lateral view. F. Paratype (MIZ), coxites apices, ventral view. G. Holotype (MNHW), ♂, segments IX and X, dorsal. H. Holotype (MNHW), penis, lateral. I. Holotype (MNHW), penis tip, lateral. J. Holotype (MNHW), penis tip, inner. K. Holotype (MNHW), tegmen, lateral view. L. Holotype (MNHW), tegmen, inner view.
Fig. 2 in ON THE VECTOR PROPERTIES OF HENOSEPILACHNA VIGINTIOCTOMACULATA MOTSCHULSKY, 1858 (COLEOPTERA: COCCINELLIDAE) IN THE TRANSMISSION OF POTATO VIRUSES
Fig. 2. Chemo-orientation of healthy Henosepilachna vigintioctomaculata. 1 – % of healthy insects on leaves of healthy plants; 2 – % of healthy insects on potato leaves infected with plant viruses (PVY, PVM, PVX, PVS, PLRV, PSTVd); healthy insects – H. vigintioctomaculata with no potato viruses detected in their bodies; healthy plants – the potato leaves that were not infected with any plant virus; infected plants – the potato leaves that were infected with one or several plant viruses (PVY, PVM, PVX, PVS, PLRV, and PSTVd).
Fig. 1 in ON THE VECTOR PROPERTIES OF HENOSEPILACHNA VIGINTIOCTOMACULATA MOTSCHULSKY, 1858 (COLEOPTERA: COCCINELLIDAE) IN THE TRANSMISSION OF POTATO VIRUSES
Fig. 1. Chemo-orientation of Henosepilachna vigintioctomaculata. Reduction: 1 – % of healthy insects on leaves of healthy plants; 2 – % of infected insects on leaves of healthy plants; 3 – % of healthy insects on potato leaves infected with plant viruses (PVY, PVM, PVX, PVS, PLRV, PSTVd); 4 – % of infected insects on potato leaves infected with plant virus (PVY, PVM, PVX, PVS, PLRV, PSTVd); healthy insects – H. vigintioctomaculata with no potato viruses detected in their bodies; infected insects – H. vigintioctomaculata with certain potato viruses detected in their bodies (PVY, PVM, PVX, PVS, PLRV, and PSTVd); healthy plants – the potato leaves that were not infected with any plant virus; infected plants – the potato leaves that were infected with one or several plant viruses (PVY, PVM, PVX, PVS, PLRV, and PSTVd). 19
Fig. 3 in ON THE VECTOR PROPERTIES OF HENOSEPILACHNA VIGINTIOCTOMACULATA MOTSCHULSKY, 1858 (COLEOPTERA: COCCINELLIDAE) IN THE TRANSMISSION OF POTATO VIRUSES
Fig. 3. Chemo-orientation of infected Henosepilachna vigintioctomaculata. Reduction: 1 – % of infected insects on leaves of healthy plants; 2 – % of infected insects on potato leaves infected with plant virus (PVY, PVM, PVX, PVS, PLRV, PSTVd); infected insects – H. vigintioctomaculata with certain potato viruses detected in their bodies (PVY, PVM, PVX, PVS, PLRV, and PSTVd); healthy plants – the potato leaves that were not infected with any plant virus; infected plants – the potato leaves that were infected with one or several plant viruses (PVY, PVM, PVX, PVS, PLRV, and PSTVd).
Fig. 2 in Expansion of Harmonia axyridis (Pallas, 1773) (Coleoptera: Coccinellidae) to European part of Russia in 2018 - 2020
Fig. 2. The main color morphs: À – f. succinea (Saransk); B – f. conspicua (Saransk); C – f. succinea (Baikovo); D – f. succinea (Baikovo); E – f. spectabilis (Yalga); F – f. succinea (Yalga).
ScienceDex guides
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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.