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1,023 results for “host record”
Figure 1 from: Chen X-M, Tang X, Ma J, Liu N-G, Tibpromma S, Karunarathna SC, Xiao Y-P, Lu Y-Z (2024) Identification of two new species and a new host record of Distoseptispora (Distoseptisporaceae, Distoseptisporales, Sordariomycetes) from terrestrial and freshwater habitats in Southern China. MycoKeys 102: 83-105. https://doi.org/10.3897/mycokeys.102.115452
Figure 1 Phylogenetic tree generated from ML analysis based on a combination of LSU, ITS, tef1-a, and rpb2 sequence data. Bootstrap support values of ML and MP equal to or greater than 75%, and PP value equal to or greater than 0.95 are given near the nodes as ML/PP/MP. The tree is rooted with Aquapteridospora aquatica (MFLUCC 17-2371). Ex-type strains are indicated by the superscript T. The new collections are in bold red text.
Figure 4 from: Chen X-M, Tang X, Ma J, Liu N-G, Tibpromma S, Karunarathna SC, Xiao Y-P, Lu Y-Z (2024) Identification of two new species and a new host record of Distoseptispora (Distoseptisporaceae, Distoseptisporales, Sordariomycetes) from terrestrial and freshwater habitats in Southern China. MycoKeys 102: 83-105. https://doi.org/10.3897/mycokeys.102.115452
Figure 4 Distoseptispora tectonae (GZAAS 22-2046) a, b colonies on substrate c, d conidiophores and conidia e, f conidiophores g–k conidia l germinated conidium m, n colonies on PDA (m from front n from reverse) Scale bars: 50 μm (c, d, g–l); 20 μm (e, f).
Figure 3 from: Chen X-M, Tang X, Ma J, Liu N-G, Tibpromma S, Karunarathna SC, Xiao Y-P, Lu Y-Z (2024) Identification of two new species and a new host record of Distoseptispora (Distoseptisporaceae, Distoseptisporales, Sordariomycetes) from terrestrial and freshwater habitats in Southern China. MycoKeys 102: 83-105. https://doi.org/10.3897/mycokeys.102.115452
Figure 3 Distoseptispora lanceolatispora (GZAAS 22-2045, holotype) a, b colonies on substrate c–e conidiophores and conidia f, g conidiogenous cells bearing conidia h–k conidia l germinated conidium m, n colony on PDA (m from front n from reverse). Scale bars: 50 μm (c–g); 30 μm (h–l).
Figure 8 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 8 Scanning electron micrograph of the ventral view of the frontal border of Gnathia aff. maculosa Ota & Hirose, 2009 (QM W29821) showing bundles of several long setae (two arrows). Scale bar: 500 µm.
Figure 7 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 7 Gnathia aff. maculosa Ota and Hirose, 2009 (A–D; QM W29822) and G. trimaculata Coetzee, Smit, Grutter & Davies, 2009 (E; QM W29825) A whole body (dorsal view) B pereonite 1, cephalosome, and mandible (dorsal view) C pleotelson (dorsal view) D right pylopod (ventral view) E frontal border of G. trimaculata (dorsal view).
Figure 6 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 6 Gnathia taurus sp. nov. (holotype QM W29819) A right maxilliped (ventral view) B right pylopod (ventral view) C right pereopod 2 (lateral view) D penes (ventral view) E. right pleopod 2.
Figure 5 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 5 Gnathia taurus sp. nov. (holotype QM W29819) A whole body (dorsal view) B cephalosome and mandible (dorsal view) C pereonite 1, cephalosome, and mandible (right lateral view) D pleotelson (dorsal view) E right antennula F right antenna.
Figure 3 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 3 Gnathia antennacrassa sp. nov. (holotype, WAM C-79675) A left maxilliped (ventral view) B left pylopod (ventral view) C left pereopod 2 (lateral view) D penes (ventral view) E left pleopod 2.
Figure 2 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 2 Gnathia antennacrassa sp. nov. (holotype, WAM C-79675) A whole body (dorsal view) B cephalosome and mandible (dorsal view) C pereonite 1, cephalosome, and mandible (left lateral view) D pleotelson (dorsal view) E left antennula F left antenna.
Figure 1 from: Ota Y, Erasmus A, Grutter AS, Smit NJ (2024) Two new species and new host and distribution records of Gnathia Leach, 1814 (Crustacea, Isopoda, Gnathiidae) from Western Australia and the Great Barrier Reef, Australia. ZooKeys 1193: 125-144. https://doi.org/10.3897/zookeys.1193.116538
Figure 1 Photograph of fixed Gnathia antennacrassa sp. nov. (holotype, WAM C-79675). Scale bar: 1 mm.
Figure 4 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 4 Portion of the tree of highest posterior probability from a 10 million-generation Bayes analysis of COI. The numbers of specimens of each species are collapsed (when possible) into single terminals (terminal triangles), with the number of specimens/OTUs for each collapsed species in parentheses. The length of the triangles represents the branch length from the node to the tip of the longest branch for that species. The numbers above the branches are the posterior probabilities × 100. The red dots indicate the three species that could not be differentiated morphologically. Modified from Sharkey et al. (2018).
Figure 37 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 37 Exit hole, left side, cut by the wasp Triraphis doncombi (DHJPAR0038023) to exit the mummified body wall of the parasitized host caterpillar Euclea mesoamericana (Limacodidae) in its last instar.
Figure 36 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 36 White pupa of wasp Triraphis doncombi (DHJPAR0038023) visible through the translucent body wall of the parasitized host caterpillar Euclea mesoamericana (Limacodidae) in its last instar.
Figure 39 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 39 Yelicones mayrabonillae, remains of host caterpillar, epipajanzen01 Janzen882 (Pyralidae); note mummified host caterpillar curved into a distinctive "C" shape, characteristic of other species of pyralid caterpillars attacked by species of Yelicones.
Figure 24 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 24 Tough-walled silk cocoon of Homolobus stevestroudi. Note shiny surface of the inside visible just inside the cut off right-hand end. That hard smooth surface makes the cocoon wall extremely tough and difficult to penetrate with an insect pin. The terminal circular cut exit hole is characteristic of most genera of large bodied ACG Braconidae and many small ones as well.
Figure 2 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 2 Portion of the NJ tree generated from BOLD showing additions of sequences with barcodes shorter than 650bp. These are highlighted in blue.
Figure 13 from: Sharkey MJ, Baker A, McCluskey K, Smith A, Naik S, Ratnasingham S, Manjunath R, Perez K, Sones J, D'Souza M, Jacques BS, Hebert P, Hallwachs W, Janzen D (2021) Addendum to a minimalist revision of Costa Rican Braconidae: 28 new species and 23 host records. ZooKeys 1075: 77-136. https://doi.org/10.3897/zookeys.1075.72197
Figure 13 Communal and jointly constructed cocoon of at least 56 sibling larvae of Bracon andreamezae, one of which is DHJPAR0031182, displaying adult exit holes through the tough silk roof of the same consistency as the floor of the chamber; multiple wasps exited through a single hole. This species of wasp has been reared only twice among 1,391 rearings of solitary Yanguna cosyra caterpillars for more than 34 years.
Supplementary material 1 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Video 1. Mymaromma menehune sp. nov. ♀ exploring a F. microcarpa branch and grooming
Figure 5 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 5 Lepidopsocus sp., host of Mymaromma menehune sp. nov. A–DLepidopsocus sp. eggs, found on F. microcarpa branches, in C two eggs visible, oviposited into a fissure in the wood presumably chewed by an ovipositing cerambycid, and secondarily inhabited by Cryphalus brasiliensis (Coleoptera: Scolytinae) E, FLepidopsocus sp. adult reared from morphologically identical eggs.
Figure 3 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 3 Relative lengths and widths for 5 females and 4 males of antennal segments of M. menehune sp. nov. A, B female C, D male. Bar heights are means, error bars are ranges.
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Allen Brain Atlas
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International Brain Laboratory public data
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