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Figure 3 from: Chen WH, Nguyen QH, Chen RZ, Nguyen TH, Nguyen VT, Nguyen SK, Möller M, Middleton DJ, Shui Y-M (2018) Two new species of Oreocharis (Gesneriaceae) from Fan Si Pan, the highest mountain in Vietnam. In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 95-106. https://doi.org/10.3897/phytokeys.94.21329
Figure 3 Oreocharis grandiflora W.H.Chen, Q.H.Nguyen & Y.M.Shui, sp. nov. (all drawings based on the holotype Y.M. Shui et al. B2013-550 in KUN, drawn by Y.F. Shui) A Habit B Opened corolla showing corolla lobes and two pairs of stamens C pistil at stigma receptivity and calyx.
Figure 6 from: Golovatch SI, Martens J (2017) Distribution, diversity patterns and faunogenesis of the millipedes (Diplopoda) of the Himalayas. In: Stoev P, Edgecombe GD (Eds) Proceedings of the 17th International Congress of Myriapodology, Krabi, Thailand. ZooKeys 741: 3-34. https://doi.org/10.3897/zookeys.741.20041
Figure 6 General schematic picture of the faunogenesis of Himalayan Diplopoda. Arrows reflect the main pathways of faunal migration or exchange, their thickness roughly corresponding to the degree of influence. The thickest arrow 1 clearly emphasizes the dominant roles the Indo-Malayan core fauna may have played in the present-day composition of the Himalayan fauna, its most ancient layers extending westwards to reach central and western Asia, as well as Europe (by default also northwards up to eastern Asia and even North America). The considerably less thick arrows 2 and 3 are to reflect the more subordinate roles the Sino-Himalayan and Palaearctic elements, respectively, could have played in the modern Himalayan fauna. Arrows 4 and, especially, 5 are even less thick and demonstrate the relatively minor faunal exchanges to be presumed between the Indian and Himalayan faunas.
Figure 4 from: Golovatch SI, Martens J (2017) Distribution, diversity patterns and faunogenesis of the millipedes (Diplopoda) of the Himalayas. In: Stoev P, Edgecombe GD (Eds) Proceedings of the 17th International Congress of Myriapodology, Krabi, Thailand. ZooKeys 741: 3-34. https://doi.org/10.3897/zookeys.741.20041
Figure 4 Vertical distribution of several genera of Diplopoda in the Himalayas (modified, after Golovatch and Martens 1996).
Figure 3 from: Golovatch SI, Martens J (2017) Distribution, diversity patterns and faunogenesis of the millipedes (Diplopoda) of the Himalayas. In: Stoev P, Edgecombe GD (Eds) Proceedings of the 17th International Congress of Myriapodology, Krabi, Thailand. ZooKeys 741: 3-34. https://doi.org/10.3897/zookeys.741.20041
Figure 3 Gonopodal structural variations between several species of Beronodesmus: B. martensi Golovatch et al., 2016 (1–3), B. serratus Golovatch et al., 2016 (4, 5), B. simplex Golovatch, 2016 (6, 7), B. distospinosus Golovatch, 2015 (8, 9), B. latispinosus Golovatch, 2015 (10, 11), B. sinuatospinus Golovatch, 2015 (12, 13) and B. gorkhalis Golovatch, 2015 (14). Scale bars: 1.0 mm (4–5, 14), 0.5 mm (1–3, 8–13) or 0.4 mm (6, 7). After Golovatch (2015a, 2016c) and Golovatch et al. (2016).
Figure 5 from: Golovatch SI, Martens J (2017) Distribution, diversity patterns and faunogenesis of the millipedes (Diplopoda) of the Himalayas. In: Stoev P, Edgecombe GD (Eds) Proceedings of the 17th International Congress of Myriapodology, Krabi, Thailand. ZooKeys 741: 3-34. https://doi.org/10.3897/zookeys.741.20041
Figure 5 Distribution of the genus Hirudicyptus (Siphonocryptidae, Siphonocryptida). After Golovatch et al. (2015).
Figure 2 from: Golovatch SI, Martens J (2017) Distribution, diversity patterns and faunogenesis of the millipedes (Diplopoda) of the Himalayas. In: Stoev P, Edgecombe GD (Eds) Proceedings of the 17th International Congress of Myriapodology, Krabi, Thailand. ZooKeys 741: 3-34. https://doi.org/10.3897/zookeys.741.20041
Figure 2 The vegetation belts and most important plant communities in the Nepal Himalayas. The Roman numerals at the bottom indicate the floral regions of Nepal (modified, after Dobremez 1972).
Figure 1 from: López Ciruelos SI, Brown PA, Nieto Nafría JM (2018) Two new species of the genus Aphis (Hemiptera, Aphididae) from Chile on host species of Alstroemeriaceae and Ericaceae. ZooKeys 738: 37-45. https://doi.org/10.3897/zookeys.738.21966
Figure 1 Apterous viviparous females, habitus (in part). Left, Aphis alstroemeriae; right, Aphis luzuriagae sp. n., paratype.
Figure 2 from: López Ciruelos SI, Brown PA, Nieto Nafría JM (2018) Two new species of the genus Aphis (Hemiptera, Aphididae) from Chile on host species of Alstroemeriaceae and Ericaceae. ZooKeys 738: 37-45. https://doi.org/10.3897/zookeys.738.21966
Figure 2 Aphis luzuriagae sp. n., apterous viviparous female. A end of rostrum B end of tibia and tarsus of hind leg C siphunculus D cauda and anal plate.
Figure 4 from: López Ciruelos SI, Brown PA, Nieto Nafría JM (2018) Two new species of the genus Aphis (Hemiptera, Aphididae) from Chile on host species of Alstroemeriaceae and Ericaceae. ZooKeys 738: 37-45. https://doi.org/10.3897/zookeys.738.21966
Figure 4 Aphis gaultheriae sp. n., apterous viviparous female. A end of rostrum B end of tibia and tarsus of hind leg C siphunculus D cauda.
Figure 8 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 8 Distribution of two new cambalopsid species. Key: □ Plusioglyphiulus digitiformis sp. n., Jatwet Gu and Kyauk Khaung Cave ■ Plusioglyphiulus digitiformis sp. n., Mondawa Gu Cave △ Plusioglyphiulus digitiformis sp. n., Cave in Parpant area ● Plusioglyphiulus digitiformis sp. n., Parpent Cave n°1 and Parpent Cave n°2 ◊ Plusioglyphiulus digitiformis sp. n., Saddan Sin Gu Cave and Nathack Gu Cave ○ Trachyjulus bifidus sp. n., San Gu Cave, Yae Gu Cave, Linno Gu n°1 Cave and Thin Bow Gu Cave.
Figure 6 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 6 Trachyjulus bifidus sp. n., ♂ paratype from Linno Gu n°1 Cave. A, B legs 1, anterior and caudal views, respectively C leg 2, caudal view D penes, caudal view E legs 3, caudal view F, G anterior gonopods, anterior and caudal views, respectively H tip of telopodite of anterior gonopod, caudal view I, J posterior gonopods, anterior and caudal views, respectively K right posterior gonopod, caudal view.
Figure 7 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 7 Trachyjulus bifidus sp. n., ♂ holotype from San Gu Cave. A antenna, lateral view B gnathochilarium, ventral view C legs 1, anterior view D legs 2, caudal view E legs 3, caudal view F posterior gonopods, caudal view G H anterior gonopods, anterior and caudal views, respectively. Abbreviations: cp coxal processes te telopodites acp anterior coxosternal process pcp posterior coxoternal process. Scale bars: 0.2 mm.
Figure 5 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 5 Trachyjulus bifidus sp. n., A–C ♀ paratype from Linno Gu n°1 Cave D–U ♂ paratype from Linno Gu n°1 Cave. A, B anterior part of body, lateral and dorsal views, respectively C collum and body ring 2, dorsal view D, E head, anterior and ventral views F anterior part of antenna, ventral view G bacilliform sensilla on antennomere 5, lateral view H tip of antenna I base of antennomere 5, lateral view J, K, O midbody rings, lateral, dorsal and ventral views, respectively L midbody ring, dorsal view M midbody prozona, dorsal view N cross-section of a midbody ring P claws of midbody legs Q midbody porostele, dorsal view R–U, posterior part of body, lateral, dorsal and ventral views, respectively.
Figure 3 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 3 Plusioglyphiulus digitiformis sp. n., ♂ paratype from Parpant area. A, B ♂ legs 1, caudal and anterior views, respectively C claw of ♂ leg 1, anterior view D ♂ legs 2, caudal view E, F ♂ legs 3, anterior and caudal views, respectively G, H anterior gonopods, anterior and caudal views, respectively I microsetae on top of coxal processes of anterior gonopods, caudal view K, L posterior gonopods, caudal and anterior views, respectively J tip of telopodite of posterior gonopod, caudal view M setose lobe on telopodite of posterior gonopod, anterior view.
Figure 4 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 4 Plusioglyphiulus digitiformis sp. n., A, B ♂ paratype from Mondawa Gu Cave C–H ♂ paratype from Parpent Cave n°2. A antenna, lateral view B gnathochilarium, ventral view C legs 1, anterior view D legs 2, caudal view E legs 3, caudal view F midbody leg, anterior view G anterior gonopods, caudal view H, I posterior gonopods, caudal and anterior views, respectively. Abbreviations: acp apiconmesal coxoternal process bcp basolateral coxosternal process te telopodites ap anterior coxal processes cp caual coxal processes pp paramedian coxal processes. Scale bars: 0.2 mm.
Figure 1 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 1 Plusioglyphiulus digitiformis sp. n., A, B, ♀ paratype from Parpant area, live animal. Pictures by R. Srisonchai, not to scale.
Figure 2 from: Likhitrakarn N, Golovatch SI, Srisonchai R, Brehier F, Lin A, Sutcharit C, Panha S (2018) Two new species of the millipede family Cambalopsidae from Myanmar (Diplopoda, Spirostreptida). ZooKeys 760: 55-71. https://doi.org/10.3897/zookeys.760.24837
Figure 2 Plusioglyphiulus digitiformis sp. n., A–C, F, H–J, L, M ♀ paratype from Parpant area D, E, G, K, N–P ♂ paratype from Parpant area. A, B anterior part of body, lateral and dorsal views, respectively C collum and body ring 2, dorsal view D head, ventral view E anterior part of antenna, lateral view F second body crest, dorsal view G bacilliform sensilla on antennomere 5, lateral view H, I midbody rings, lateral and dorsal views, respectively J porostele, lateral view K cross-section of a midbody segment L midbody crests, dorsal view M midbody prozona, dorsal view N–P posterior part of body, lateral, dorsal and ventral views, respectively.
Figure 9 from: Golovatch SI, Nzoko Fiemapong AR, Tamesse JL, Mauriès J-P, VandenSpiegel D (2018) Trichopolydesmidae from Cameroon, 1: The genus Hemisphaeroparia Schubart, 1955. With a genus-level reclassification of Afrotropical genera of the family (Diplopoda, Polydesmida). ZooKeys 785: 49-98. https://doi.org/10.3897/zookeys.785.27422
Figure 9 Hemisphaeropariaongot sp. n., SEM micrographs of ♂ paratype A, D, H anterior part of body, lateral, dorsal and ventral views, respectively B, E, I midbody segments, lateral, dorsal and ventral views, respectively C, F, J posterior part of body, lateral, dorsal and ventral views, respectively G midbody segment, caudal view K tergal seta, lateral view. Scale bars: 0.2 mm (A–C), 0.1 mm (D–J), 0.01 mm (K).
Figure 7 from: Golovatch SI, Nzoko Fiemapong AR, Tamesse JL, Mauriès J-P, VandenSpiegel D (2018) Trichopolydesmidae from Cameroon, 1: The genus Hemisphaeroparia Schubart, 1955. With a genus-level reclassification of Afrotropical genera of the family (Diplopoda, Polydesmida). ZooKeys 785: 49-98. https://doi.org/10.3897/zookeys.785.27422
Figure 7 Hemisphaeropariaspiniger sp. n., SEM micrographs of ♂ paratype A habitus, lateral view B, E anterior part of body, lateral and dorsal views, respectively C, F midbody segments, lateral and dorsal views, respectively D, G posterior part of body, lateral and dorsal views, respectively H midbody paratergum, dorsolateral view I tergal fine structure. Scale bars: 0.5 mm (A), 0.1 mm (B–G, J), 0.02 mm (H, I).
Figure 5 from: Golovatch SI, Nzoko Fiemapong AR, Tamesse JL, Mauriès J-P, VandenSpiegel D (2018) Trichopolydesmidae from Cameroon, 1: The genus Hemisphaeroparia Schubart, 1955. With a genus-level reclassification of Afrotropical genera of the family (Diplopoda, Polydesmida). ZooKeys 785: 49-98. https://doi.org/10.3897/zookeys.785.27422
Figure 5 Hemisphaeropariabangoulap sp. n., SEM micrographs of ♂ paratype A, D, G anterior part of body, lateral, dorsal and ventral views, respectively B, E, H midbody segments, lateral, dorsal and ventral views, respectively C, F, I posterior part of body, lateral, dorsal and ventral views, respectively J tergal seta, lateral view K midbody segment, caudal view L midbody paratergum, lateral view M tergal fine structure. Scale bars: 0.2 mm (D–F, H), 0.1 mm (A–C, G, I, K), 0.05 (L, M), 0.01 mm (J).
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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)
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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.