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Fig. 2 in Occurrence and Molecular Barcode of the Freshwater Heteronemertean Apatronemertes albimaculosa (Nemertea: Pilidiophora) from Japan
Fig. 2. Apatronemertes albimaculosa Wilfert and Gibson, 1974, ICHUM 5112, photomicrographs of transverse sections. A, Precerebral region, showing outer vessel (inner vessels ventrally anastomosed here); B, proboscis musculature, showing muscle-cross fibre (indicated by arrowheads) connecting outer circular muscle layer and inner myoepithelium; C, testis containing sperm; D, intestinal region, showing oocytes and amorphous excretory tissue (indicated by asterisks) discharging into intestine via specialized cells (indicated by arrowheads).
Supplementary material 1 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Table S1. Genetic distances between COI sequences of Oxyscelio from southern China
Figure 5 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 5 Oxyscelio stenos Mo & Chen, sp. nov., holotype, female (SCAU 3049080) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.
Figure 4 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 4 Oxyscelio latheticus Mo & Chen, sp. nov., holotype, female (SCAU 3049073) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.
Figure 1 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 1 Maximum likelihood tree demonstrating the clustering of OxyscelioCOI barcodes. Bootstraps values of 50 and above are indicated.
Figure 3 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 3 Oxyscelio apheles Mo & Chen, sp. nov., holotype, female (SCAU 3049046) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F Antenna G metasoma, dorsal view H metasoma, ventral view.
Figure 6 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 6 Oxyscelio striae Mo & Chen, sp. nov., holotype, female (SCAU 3048667) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.
Figure 2 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912
Figure 2 Oxyscelio amalocarina Mo & Chen, sp. nov., holotype, female (SCAU 3049046) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.
Supplementary material 1 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
: Data type: multimedia
Supplementary material 3 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
: Data type: multimedia
Supplementary material 2 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
: Data type: multimedia
Figure 7 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 7 Spore morphology and symptoms on fern fronds of Milesinawoodwardiana sp. nov. a Fronds of the host Woodwardiaradicans at the collection site in La Palma. Dark spots indicate areas where sori are formed on the underside (La Palma, Cubo de la Galga, ca. 1.2 km SW of parking lot W San Bartolomé, 11 Aug 2017) b Host leaf with uredinia. Sori (arrows) are restricted to areas between leaf veins (KR-M-0048787, dissecting microscope) c Transverse section of uredinium E=epidermis, P=peridial cells, U=urediniospore, M=mesophyll of host plant (KR-M-0048787, LM, interference contrast) d Urediniospores with long echinulae (KR-M-0049036, paratype, SEM) e Urediniospores, cracked, without plasma, germ pores scattered (KR-M-0049033, paratype; LM, phase contrast) f Germinating urediniospores, arrows point to germ tubes (KR-M-0049033, paratype, LM, phase contrast).
Figure 6 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 6 Urediniospores of 11 Milesina species. aMilesinablechni on Struthiopterisspicant (KR-M-0049039, SEM) bMilesinablechni on Struthiopterisspicant, cracked spore with released plasma, germ pores scattered (KR-M-0038523, LM phase contrast) cMilesinacarpatica on Dryopterisfilix-mas (KR-M-0043192, SEM) dMilesinaexigua on Polystichumbraunii, smooth surface (M, M-020547, SEM) eMilesinaexigua on Polystichumbraunii, smooth surface, plasma-free spore, germ pores bipolar (M, M-0205472, LM, phase contrast) fMilesinafeurichii on Aspleniumseptentrionale with smooth areas on surface (KR-M-0043159, SEM) gMilesinafeurichii on Aspleniumseptentrionale, cracked plasma-free spore, germ pores scattered (KR-M-0043159, LM, phase contrast) hMilesinakriegeriana on Dryopteriscarthusiana (KR-M-0048085, SEM) iMilesinamagnusiana on Aspleniumadiantum-nigrum with smooth areas on surface (M, M-0205474, SEM) jMilesinamagnusiana on Aspleniumadiantum-nigrum, spore plasma-free, germ pores scattered (M, M-0205474, LM, phase contrast) kMilesinamurariae on Aspleniumruta-muraria with smooth areas on surface (KR-M-0035461, SEM) lMilesinamurariae on Aspleniumruta-muraria, cracked spore with released plasma, germ pores scattered (KR-M-0043154, LM, phase contrast) mMilesinapolypodii on Polypodiumvulgare with smooth areas on surface (KR-M-0043173, SEM) nMilesinascolopendrii on Aspleniumscolopendrium with smooth areas on surface (KR-M-0049049, SEM) oMilesinavogesiaca on Polystichumaculeatum, surface with very flat warts at the tip of the spore (arrow) (KR-M-0043160, SEM) pMilesinavogesiaca on Polystichumaculeatum, surface smooth (no warts visible at the tip), germ pores bipolar (KR-M-0043175, LM, phase contrast) qMilesinawhitei on Polystichum sp. (KR-M-0039378, SEM) rMilesinawhitei on Polystichumsetiferum, cracked spore with released plasma, germ pores scattered (KR-M-0049177, LM, phase contrast).
Figure 4 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 4 Deviations from the consensus ITS sequence of section Scolopendriorum. Description as for Figure 3. Milesinafeurichii deviates from the other three species in positions 288 (A) and 521 (G).
Figure 5 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 5 Boxplot of germ pore numbers of urediniospores of 12 Milesina spp. and four sections. For each species 120 spores from two (M.magnusiana), three (M.feurichii) or four (all other species) specimens were evaluated. Median, whisker, quantile and outliers (dots) are shown.
Figure 3 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 3 Deviations from the consensus ITS sequence of section Milesina. The first line indicates the nucleotide positions in base pairs, the second line the consensus sequence. The order of specimens is as shown in Figure 1. "Milesina sp" denotes specimens from Abiesalba. Deviations for single specimens can be found at 5 positions. All specimens of M.blechni and M.woodwardiana deviate at position 381 from M.whitei and kriegeriana.
Figure 2 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 2 Phylograms of supplementary barcodes. The nad6 phylogram is based on a 550 bp alignment, the 28S phylogram on a 680 bp alignment. The technical description is the same as for Figure 1. All Milesina specimens from Figure 1 were attempted to sequence for the supplementary barcodes. Only the shown specimens resulted in sequences. The non-Milesina species were altered depending on availability. No GenBank sequences were included and the genus Chrysomyxa was replaced by Pucciniastrum.
Figure 1 from: Bubner B, Buchheit R, Friedrich F, Kummer V, Scholler M (2019) Species identification of European forest pathogens of the genus Milesina (Pucciniales) using urediniospore morphology and molecular barcoding including M. woodwardiana sp. nov. MycoKeys 48: 1-40. https://doi.org/10.3897/mycokeys.48.30350
Figure 1 ITS Phylogram of 11 Milesina species (excluding M.magnusiana). The phylogram is based on a 733-bp alignment. A Maximum Likelihood (ML) tree is shown with support values for ML, Bayesian Inference (BI) and Neighbour Joining (NJ), in the order ML/BI/NJ. Support values are presented when they are above 50 (ML, NJ) or 0.5 (BI). The host is indicated in brackets. Milesina specimens without species designation (host Abiesalba) are not colour-coded. For comparison, several sequences were included from closely related genera. They were all newly generated within the GBOL project, except the GenBank sequences for Cronartium spp. The drawings on the right side present the typical arrangement of spines and germ pores (grey dots) on the Milesina urediniospores.
Figure 8 from: Smit J, Reijnen B, Stokvis F (2013) Half of the European fruit fly species barcoded (Diptera, Tephritidae); a feasibility test for molecular identification. ZooKeys 365: 279-305. https://doi.org/10.3897/zookeys.365.5819
Figure 8 - The Neighbour-Joining tree of the genus Campiglossa with Sphenella marginata as outgroup inferred from COI barcodes. Bootstrap values above 50 (1000 replicates) are given at the nodes.
Figure 9 from: Smit J, Reijnen B, Stokvis F (2013) Half of the European fruit fly species barcoded (Diptera, Tephritidae); a feasibility test for molecular identification. ZooKeys 365: 279-305. https://doi.org/10.3897/zookeys.365.5819
Figure 9 - The Neighbour-Joining tree of the genus Orellia inferred from COI barcodes. Bootstrap values above 50 (1000 replicates) are given at the nodes.
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Allen Brain Atlas
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International Brain Laboratory public data
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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.