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Figures 65-72 from: Goldstein PZ, Janzen DH, Proshek B, Dapkey T, Hallwachs W (2018) Review of Lophomyra Schaus, 1911 (Lepidoptera, Noctuidae): a new combination and re-descriptions of species newly associated with ferns (Polypodiaceae). In: Schmidt BC, Lafontaine JD (Eds) Contributions to the systematics of New World macro-moths VII. ZooKeys 788: 135-165. https://doi.org/10.3897/zookeys.788.21235
Figures 65-72 Lophomyra male genitalia, valves. 65L.tacita, Turrialba, Costa Rica, USNMENT01438834, USNM Dissection 148081, 66L.tacita, Turrialba, Costa Rica,USNM Dissection 148143, USNMENT01370321 67L.tacita, Área de Conservación Guanacaste (ACG), Costa Rica, 10-SRNP-73310, USNMENT01437265 USNM Dissection 148099 tacita68L.tacita, Venezuela, USNMENT01437226, USNM Dissection 148083 69L.commixta, Holotype, French Guiana, USNMENT01370304, USNM Dissection 148186 70L.santista, Holotype, Brazil, NHMUK01606195 71L.commixta, ACG, 11-SRNP-69041, USNMENT01370325, USNM Dissection 148098 72L.commixta, ACG, 10-SRNP-70488, USNMENT01438848, USNM Dissection 148180.
Figure 4 from: Ebinghaus M, Maier W, Wingfield MJ, Begerow D (2018) New host associations and a novel species for the gall-inducing acacia rust genus Ravenelia in South Africa. MycoKeys 43: 1-21. https://doi.org/10.3897/mycokeys.43.25090
Figure 4 Infected host organs and spore images of R.xanthophloeae (A–H), R.natalensis (I), R. evansii (J) and R.macowaniana (K) A Infected individual of V.xanthophloea. Leaves were prematurely shed in comparison with uninfected trees B Telia on leaflets of V.xanthophloeaC SEM of an aeciospore showing scattered germpores D SEM of an urediniospore E Urediniospores seen in LM F SEM view of a teliospore of R.xanthophloeae. The arrows indicate irregularly arranged verrucose ornamentations G Telium of R.xanthophloeae seen in SEM H LM view of a teliospore. The arrow indicates irregularly arranged verrucose ornamentations I Teliospores of R.natalensis with long pedicels J SEM picture of median section of a teliospore of R.evansii. Arrows indicate 2-celled probasidial cells K LM picture of teliospores of R.macowaniana. Scale bars: 1 mm (B), 4 μm (C), 2 μm (D), 20 μm (E), 20 μm (F–H, J–K), 40 μm (I).
Figure 3 from: Ebinghaus M, Maier W, Wingfield MJ, Begerow D (2018) New host associations and a novel species for the gall-inducing acacia rust genus Ravenelia in South Africa. MycoKeys 43: 1-21. https://doi.org/10.3897/mycokeys.43.25090
Figure 3 Radarchart of mean values of the morphological investigations of teliospore characteristics of Raveneliamacowaniana originated from Vachelliakarroo (red), V.natalitia (green) and R.xanthophloeae on V.xanthophloea (blue). Numbers on y-axis represent the respective minimum and maximum values. This radarchart reveals the morphological differences between R.macowaniana and R.xanthophloeae.
Figure 1 from: Ebinghaus M, Maier W, Wingfield MJ, Begerow D (2018) New host associations and a novel species for the gall-inducing acacia rust genus Ravenelia in South Africa. MycoKeys 43: 1-21. https://doi.org/10.3897/mycokeys.43.25090
Figure 1 Phylogenetic reconstruction of Ravenelia species on different Vachellia hosts A Maximum likelihood tree with 1000 bootstrap repeats based on combined nrITS and LSU rDNA sequence data. Bootstrap values below 75 are not shown. Three highly supported groups represent R.evansii, R.macowaniana and R.xanthophloeae sp. nov., respectively. Specimens that originated from formerly unreported host species are highlighted in bold B Parsimony network analysis based on the same dataset as in the ML-analysis. Each line represents one base substitution while small circles represent intermediate but missing sequences. Numbers next to lines indicate the positions of the substitutions in the alignment. Sequences in rectangular boxes were inferred as ancestral by this analysis.
Figure 2 from: Ebinghaus M, Maier W, Wingfield MJ, Begerow D (2018) New host associations and a novel species for the gall-inducing acacia rust genus Ravenelia in South Africa. MycoKeys 43: 1-21. https://doi.org/10.3897/mycokeys.43.25090
Figure 2 Biplots of a principal component analysis (PCA) of six teliospore characteristics of specimens of ARaveneliamacowaniana originating from Vachelliakarroo (red) and V.natalitia (green) and B in comparison with R.xanthophloeae sp. nov. collected from V.xanthophloea (blue) C, D represent R.evansii originating from seven distinct Vachellia species. Each dot represents an individual teliospore for which mean values of multiple measurements of all six defined morphological characteristics were calculated. Each colour represents the host species of the individual rust specimen. In D only spore representatives collected from V.borleae, V.exuvialis and V.davyi were highlighted to gain better visibility.
Figure 11 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 11 Diaportheconica (CFCC 52571) A–B Habit of conidiomata on branches C Longitudinal section of conidioma D Alpha conidia E–F Conidiophores G Culture on PDA and conidiomata. Scale bars: 300 μm (B–C), 10 μm (D–F).
Figure 10 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 10 Diaporthecinnamomi (CFCC 52569) A Culture on PDAB Conidiomata C Alpha conidia D Conidiophores. Scale bars: 200 μm (B), 10 μm (C–D).
Figure 1 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 1 Phylogram of Diaporthe from a maximum likelihood analysis based on combined ITS, cal, his3, tef1 and tub2. Values above the branches indicate maximum likelihood bootstrap (left, ML BP ≥ 50%) and bayesian probabilities (right, BI PP ≥ 0.70). The tree is rooted with Diaporthellacorylina. Strains in the current study are in blue.
Figure 16 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 16 Diaportheukurunduensis (CFCC 52592) A Habit of conidiomata on branches B Transverse section of conidioma C–D Alpha conidia E Conidiophores F Culture on PDA. Scale bars: 200 μm (B), 10 μm (C–E).
Figure 17 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 17 Diaportheunshiuensis (CFCC 52594) A Culture on PNA B Conidiomata C Alpha conidia D Conidiophores. Scale bars: 500 μm (B), 10 μm (C–D).
Figure 15 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 15 Diaporthepadina (CFCC 52590) A–B Habit of conidiomata on branches C Transverse section of conidioma D Longitudinal section of conidioma E Alpha and beta conidia F, I Beta conidia G–H Conidiophores J Culture on PDA and conidiomata. Scale bars: 500 μm (B), 200 μm (C–D), 10 μm (E–I).
Figure 14 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 14 Diaporthekadsurae (CFCC 52586) A Habit of conidiomata on branches B Transverse section of conidioma C Longitudinal section of conidioma D Alpha conidia E Conidiophores F Culture on PDA. Scale bars: 200 μm (B–C), 10 μm (D–E).
Figure 13 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 13 Diaporthefraxinicola (CFCC 52582) A–B Habit of conidiomata on branches C Transverse section of conidioma D Longitudinal section of conidioma E Alpha conidia F Beta conidia G Culture on PDA and conidiomata. Scale bars: 500 μm (B), 200 μm (C), 100 μm (D), 10 μm (E–F).
Figure 12 from: Yang Q, Fan X-L, Guarnaccia V, Tian C-M (2018) High diversity of Diaporthe species associated with dieback diseases in China, with twelve new species described. MycoKeys 39: 97-149. https://doi.org/10.3897/mycokeys.39.26914
Figure 12 Diaportheeres (CFCC 52575) A–B Habit of conidiomata on branches C Transverse section of conidioma D Longitudinal section of conidioma E Alpha conidia F Conidiophores G Culture on PDA and conidiomata. Scale bars: 500 μm (B), 200 μm (C–D), 10 μm (E–F).
Supplementary material 1 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
: Data type: occurrences
Figure 5 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
Figure 5 Sycobiahodites Farache & Rasplus, sp. n. Female, sem. A Antenna B Close-up of the pedicel, anellus and f1 C Clava D Propodeum in dorsal view E Prosternum F Ovipositor.
Figure 6 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
Figure 6 Sycobiahodites Farache & Rasplus, sp. n. Winged male. A Habitus, lateral view B Head, frontal view C Mesosoma, dorsal view D Detail of wing venation E Forewing.
Figure 3 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
Figure 3 Average abundance of Sycobiahodites Farache & Rasplus, sp. n. galls in Ficusbenjamina. The number of galls was calculated when Sycobia was present in the figs. Localities sorted by latitude. Countries: AR = Argentina, BR = Brazil, COL = Colombia; Brazilian States: BA = Bahia, DF = Distrito Federal, PA = Pará, RJ = Rio de Janeiro, RN = Rio Grande do Norte, SC = Santa Catarina, SP = São Paulo. Numbers on the left side of the plot indicate sample sizes.
Figure 2 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
Figure 2 A Detail of galls induced by Sycobiahodites Farache & Rasplus, sp. n. arrow indicates the gall. B Arrow indicates remains of flower stigma in the gall.
Figure 7 from: Farache FHA, Pereira CB, Koschnitzke C, Barros LO, Souza EMC, Felício DT, Gatti F, Cardona W, Rasplus J-Y, Pereira RAS (2018) The unknown followers: Discovery of a new species of Sycobia Walker (Hymenoptera: Epichrysomallinae) associated with Ficus benjamina L. (Moraceae) in the Neotropical region. Journal of Hymenoptera Research 67: 85-102. https://doi.org/10.3897/jhr.67.29733
Figure 7 Sycobiahodites Farache & Rasplus, sp. n. Brachypterous males. A, C, E Small form B, D, F Large form A, B Habitus, lateral view C, D Head, frontal view E, F Mesosoma, dorsal view.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.