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Fig. 5. Doliops duodecimpunctata Heller, 1923 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 5. Doliops duodecimpunctata Heller, 1923 (A – dorsal view, B – lateral view, C – labels)
Fig. 7. Doliops imitator Schultze, 1918 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 7. Doliops imitator Schultze, 1918 (A – dorsal view, B – lateral view, C – labels)
Fig. 2 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 2. Lamprobityle mindanaoense spec. nov. (A – dorsal view, B – lateral view, C – labels)
Fig. 1 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 1. Doliops schultzei sp. nov. (A – dorsal view, B – lateral view, C – labels)
Fig. 11. Doliops siargaoensis Schultze, 1919 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 11. Doliops siargaoensis Schultze, 1919 (A – dorsal view, B – lateral view, C – labels)
Fig. 4. Doliops basilana Heller, 1924 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 4. Doliops basilana Heller, 1924 (A – dorsal view, B – lateral view, C – labels)
Fig. 8. Doliops metallica Breuning, 1938 in Type specimens of the genera Doliops Waterhouse, 1841 and Lamprobityle Heller, 1923 (stat. nov.) (Coleoptera: Cerambycidae) and description of two new species deposited in Senckenberg Natural History collections Dresden, Germany
Fig. 8. Doliops metallica Breuning, 1938 (A – dorsal view, B – lateral view, C – labels)
Figure 1 in Original specimens and type localities of early described polychaete species (Annelida) from Norway, with particular attention to species described by O.F. Müller and M. Sars
Figure 1. Otto Friderich Müller. From drawing by Cornelius Høyer. Reproduced from Wolff (1994).
Figure 4 in Original specimens and type localities of early described polychaete species (Annelida) from Norway, with particular attention to species described by O.F. Müller and M. Sars
Figure 4. Michael Sars. Photography by P.M. Thomsen. Reproduced from Økland (1955).
Pest species preyed upon by bats and the crop types affected by them.
<p>This database compiles the pest species consumed by bats and the crop types they attack, as part of the supplementary material of the article entitled "<strong>Pest suppression by bats and management strategies to favour it: a global review</strong>", published in the journal Biological Reviews.</p> <p>The crop types were classified into several categories this work: cereals (e.g. wheat, maize, corn, rice, barley, sorghum); forest (e.g. beech, oak, poplar, willow); fruit crops (e.g. apple, pear, apricot, strawberry, cranberry); grasses (e.g. sugarcane, turfs, pastures); legumes (e.g. pea, bean, alfalfa, soybean); ornamental (e.g. garden species); other (cotton, tea, tobacco, hop, flax, rubber tree, hemp, peppermint, jute, rapeseed, kenaf, ashwagandha, mushrooms, honeybees); stored products (e.g. stored cereals, stored tobacco, dried fruits); and vegetables (e.g. tomato, lettuce, spinach, potato, onion).</p>
Seed dormancy types and germination response of 15 plant species in temperate montane peatlands
<p>Despite their crucial role in determining the fate of seeds, the type and breaking mode of seed dormancy in peatland plants in temperate Asia with a continental monsoon climate are rarely known. Fifteen common peatland plant species were used to test their seed germination response to various dormancy-breaking treatments, including dry storage (D), gibberellin acid soaking (GA), cold stratification (CS), warm followed cold stratification (WCS), GA soaking + cold stratification (GA+CS) and GA soaking + warm followed cold stratification (GA+WCS). Germination experiment, viability and imbibition test, and morphological observation of embryos were conducted. Of the 15 species, nine showed physiological dormancy (PD), with non-deep PD being the dominant type. Four species, <em>Angelica pubescens</em>, <em>Cicuta virosa</em>, <em>Iris laevigata </em>and<em> Iris setosa</em> exhibited morphological physiological dormancy. Two species, <em>Lycopus uniflorus</em> and<em> Spiraea salicifolia</em>, demonstrated non-dormancy of seeds. Overall, the effect hierarchy of dormancy-breaking is: CS > GA > WCS > GA+CS > D > GA+WCS. Principal component analysis demonstrated that seed traits, including embryo length: seed length ratio, seed size, and monocot/eudicot divergence, are more likely to influence seed dormancy than environmental factors. Our study suggests that nearly 90% of the tested peatland plant species in the Changbai Mountains demonstrated seed dormancy, and seed traits (e.g. embryo to seed ratio and seed size) and abiotic environmental factors (e.g. pH and temperature seasonality) are related to germination behavior, suggesting seed dormancy being a common adaptation strategy for the peatland plants in the temperate montane environment.</p>
Fig. 8 in Megascolex (Perichaeta) diffringens Baird, 1869 and Pheretima pingi Stephenson, 1925 types compared to the Amynthas corticis (Kinberg, 1867) and A. carnosus (Goto & Hatai, 1899) species-groups (Oligochaeta: Megadrilacea: Megascolecidae)
Fig. 8. Amynthas diffringens copy of Baird's original fig. 1 (habitus and a seta).
Fig. 13 in Megascolex (Perichaeta) diffringens Baird, 1869 and Pheretima pingi Stephenson, 1925 types compared to the Amynthas corticis (Kinberg, 1867) and A. carnosus (Goto & Hatai, 1899) species-groups (Oligochaeta: Megadrilacea: Megascolecidae)
Fig. 13. Prior Amynthas hongkongensis after Michaelsen (1910: fig. 22), for comparison.
Fig. 9 in New earthworm species from NIBR's Jeju-do biosphere compared to historical and new Japanese types (Oligochaeta: Megadrilacea: Megascolecidae)
Fig. 9. Amynthas yamizoyamensis after Ohfuchi's (1935: figs. 6- 10) originals.
Fig. 8. A in New earthworm species from NIBR's Jeju-do biosphere compared to historical and new Japanese types (Oligochaeta: Megadrilacea: Megascolecidae)
Fig. 8. A. shimaensis Mt. Fuji specimen (YNU) [boxed Goto & Hatai's (1899: fig. 3)].
Fig. 4 in New earthworm species from NIBR's Jeju-do biosphere compared to historical and new Japanese types (Oligochaeta: Megadrilacea: Megascolecidae)
Fig. 4. Amynthas micronarius neotype NMST An446-lhs; specimen NMST An445 - rhs.
MxiN Differentially Regulates Monomeric and Oligomeric Species of the Shigella Type Three Secretion System ATPase Spa47
<p>Enzyme kinetics data from "MxiN Differentially Regulates Monomeric and Oligomeric Species of the Shigella Type Three Secretion System ATPase Spa47".</p>
Figure 7. Type locality. Santiago 15 in Two new species of plume moths (Lepidoptera: Pterophoridae) from Atacama Desert (Chile)
Figure 7. Type locality. Santiago 15 km ENE Camino a Farellones, 02.ii.2017 (photo by A. Pototski).
Fig. 36 in First illustrated description of the male of Diphya macrophthalma, the type species of the genus (Araneae, Tetragnathidae)
Fig. 36. Distribution of Diphya species known in Chile and Argentina.
Figure 1 in The taxonomic catalog of the Brazilian fauna: Dermaptera and Phasmatodea (Insecta), with commentaries on species list, types, authorship and distribution
Figure 1. Number of species by biome: (A) Dermaptera; (B) Phasmatodea.
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.