Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
22,710
datasets available to search
ShareScore release 0.9.0
Dataset results
22,710 results for “Plants for planting”
Fig. 4 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 4. Beleses nigrifemoratus: A, B, G, J, Holotype of B. nigrifemoratus Togashi, 1999, female; C, D, H, K, holotype of B. eikoae Togashi, 2004, female; E, F, I, paratype of B. eikoae, male. A, C, E, Dorsal views; B, D, F, ventral or lateral views; G–I, anterior spur of fore tibia; J, K, head, dorsal view. Photographed by Hara.
Fig. 3 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 3. Ametastegia polygoni: A, Leaf of Fallopia japonica var. japonica, infested with larvae of A. polygoni, under side, 5. V. 2022; B, same leaf, upper side; C, same leaf, under side, with a group of middle or late instar larvae; D, late instar larva, 13. V. 2022; E, mature larvae entering cork, 13. V. 2022. A–C, Sakuragawa; D, E, Tsukuba (indoors). Photographed by Shinohara.
Fig. 1 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 1. Arge gracilicornis: A, B, Late instar larvae, Asahidake-onsen, 18. VIII. 2007; C, late instar larva, Shigakogen, 3. IX. 2006; D, final instar larva, Hakuba, 17. VIII. 2007. A, B, Photographed by Hara; C, D, photographed by Shinohara.
Fig. 2 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 2. Pamphilius kamikochensis: A, Adults on the leaves of Veratrum sp. under the host tree (13 individuals rec- ognizable), 23. V. 2022; B, female, 1. VI. 2022; C, egg (arrowed) on a leaf, 1. VI. 2022; D, E, middle instar larva, 27. VI. 2022; F, mature larva, 10. VII. 2022; G, two leaf-rolls of probably middle instar larvae and remains of egg shell on a leaf, 26. VI. 2022; H, one leaf-roll of probably late instar larva on a leaf, 26. VI. 2022. A–C, G, H, Nikko; D–F, Tsukuba (indoors). Photographed by Shinohara.
Fig. 2 in The abundance of specialist and generalist lepidopteran larvae on a single host plant species: Does spatial scale matter?
Fig. 2. Specialist lepidopteran species on Roupala montana. (A–C) Chlamydastis platyspora: (A) larva, (B) larva inside the shelter, (C) adult; (E–G) Stenoma cathosiota: (E) larva, (F) shelter, (G) adult; (H–J) species of new genus of Depressariidae: (H) larva,(I) shelter, (J) adult; (K–M) Idalus lineosus: (K–L) 6th instar showing variation in color, (M) adult; (N–O) Symmachia hippodice: (N) larva, (O) adult female, (P) adult male; (Q–S) Eomichla sp.: (Q–R) larva inside the shelter, (S) adult.
Fig. 1 in The abundance of specialist and generalist lepidopteran larvae on a single host plant species: Does spatial scale matter?
Fig. 1. Locations of the 5 study areas, as follows: A) a map of Brazil, with the coverage area of the Cerrado Biome shaded; B) a map of Goiás State, showing the locations of Parque Estadual dos Pireneus (PEP) and Parque Nacional Chapada dos Veadeiros (PNCV); and C) a map of Distrito Federal (DF), showing the locations of Fazenda Água Limpa (FAL), Parque Nacional de Brasília (PNB), and Jardim Botânico de Brasília (JBB).
Figs. 1–5. Erythrina speciosa and Aethalion reticulatum. 1 in Aethalion reticulatum (Hemiptera: Aethalionidae) feeding on Erythrina speciosa (Fabales: Fabaceae): First record of its host plant and damage characteristics
Figs. 1–5. Erythrina speciosa and Aethalion reticulatum. 1: Flowered adult E. speciosa plant (source: www.arvores.brasil.com.br). 2: Detail of the inflorescence of E. speciosa with a candelabra shape (source: www.arbolesornamentales.com/Erythrinaspeciosa.htm). 3: Adult A. reticulatum. 4: Damage caused by a colony of A. reticulatum on a seedling of E. speciosa detailing the egg clutch. 5: Nymph colony of A. reticulatum associated with Camponotus sp. ants.
Fig. 1 in Interactions of selected species of stink bugs (Hemiptera: Heteroptera: Pentatomidae) from leguminous crops with plants in the Neotropics
Fig. 1. Total records of plants associated with different species of stink bugs pests of legumes (Fabaceae) in the neotropics based on literature review. The dark line links the different values as follows: (A) = number of plant species on where each stink bug species was observed; (B) = number of plant families on where each species of stink bug was observed; and (C) = number of reproductive hosts (plants on which bug can complete development) on where each species of stink bug was observed. Note that the area for total plant species in (A) is much greater that the one for reproductive hosts in (C), indicating that on the majority of the plants the bugs are observed they do not reproduce. NV = Nezara viridula; PG = Piezodorus guildinii; EH = Euschistus heros; EM = Edessa meditabunda; DF = Dichelops furcatus; DM = Dichelops melacanthus; and TP = Thyanta perditor.
Fig. 2 in Host plant resistance in cultivated jute and its wild relatives towards jute hairy caterpillar Spilosoma obliqua (Lepidoptera: Arctiidae)
Fig. 2. Mean number of egg clusters (A) and eggs per cluster (B) laid by Spilosoma obliqua females on 6 jute species in no-choice tests.
Fig. 1 in Host plant resistance in cultivated jute and its wild relatives towards jute hairy caterpillar Spilosoma obliqua (Lepidoptera: Arctiidae)
Fig. 1. Effect of cultivated and wild jute species on Spilosoma obliqua larvae settlement (%) (A) and leaf area consumed (cm2) (B) afer 24 h in multiplechoice tests.
Fig. 1 in The effect of host plant species on the detoxifying enzymes of the Asian citrus psyllid, Diaphorina citri (Hemiptera: Liviidae)
Fig. 1. Enzymatic activity of (A) general esterase (EST), (B) glutathione S-transferase (GST), and (C) cytochrome monooxygenase P450 from Diaphorina citri reared on Citrus sinensis, Murraya paniculata, and Bergera koenigii. Means with the same letter are not significantly different from each other (P <0.05, Fisher's protected LSD test).
Fig. 1 in Host plants and natural enemies of rugose spiraling whitefly (Hemiptera: Aleyrodidae) in Florida
Fig. 1. County distribution of rugose spiraling whitefly and its key natural enemies (Encarsia spp. and Nephaspis oculata) in Florida.
Fig. 1 in New findings of thrips (Thysanoptera: Thripidae) on plants in Brazil
Fig. 1. Thrips and damage to cultivated plants. a,b,c: Damage from Dinurothrips hookeri to Mentha sp. leaves; d: Frankliniella insularis (adult); e, f, g: damage from F. insularis to rose flowers; h: Heliothrips haemorrhoidalis (adult); i: H. haemorrhoidalis (pupa); j: damage from H. haemorrhoidalis to Plumeria sp. leaves (upper side); k: damage from H. haemorrhoidalis to Plumeria sp. leaf (underside); l: Retithrips syriacus (adult); m: R. syriacus (immatures); n: damage from R. syriacus on Terminalia catappa leaves; o: damage from R. syriacus on Rosa sp. leaf; p: Selenothrips rubrocinctus (adult and immatures) on Calophyllum brasiliense leaf; q, r: damage from S. rubrocinctus on C. brasiliense; s, t: damage from S. rubrocinctus on Liquidambar styraciflua.
◂Fig. 6 Gynoecial development, fruit and seedling of C. crenata %yellow frames), C. cf. grandicalyx %blue frames) and C. sinensis %pink frames; A–F light microscopy, G–K stereo microscopy of endocarp, mesocarp removed; L–O field images; TS in horizontal orientation). A, B TS of anthetic flower %note two to three abortive ovules and strongly stained, peripheral tissue). C, D TS of anthetic flower %note two to three abortive ovules and lignifying portions of prospective mesocarp). E Young fruit %note developing endocarp and flashily pink portions of the mesocarp). F TS of postanthetic flower %note three abortive ovules and lignifying portions of prospective mesocarp). G TS of endocarp, with three developed embryos removed %note scanty endosperm). H Endocarp. J TS of endocarp. K Endocarp. L Immature fruits. M Mature fruits. N Seedlings %note short hypocotyl and long petioles of cotyledons). O Seedlings %note long hypocotyl and short petioles of cotyledons; image taken from cultivated plant, accession number 2012–0005, in the Botanical Garden Munich) %LS, longisection; TS, transverse section; ao, abortive ovule; cot, cotyledon; db, dorsal bundle; c, calyx; ec, endocarp; ens, endosperm; ex, exocarp; fr, fruit; h, hypocotyl; int, integument; lb, lateral bundle; mc, mesocarp; o, ovule; pet, petiolus; sty, style; ut, peripheral tissue; vs, ventral slit) in Observations on flower and fruit anatomy in dioecious species of Cordia (Cordiaceae, Boraginales) with evolutionary interpretations
◂Fig. 6 Gynoecial development, fruit and seedling of C. crenata %yellow frames), C. cf. grandicalyx %blue frames) and C. sinensis %pink frames; A–F light microscopy, G–K stereo microscopy of endocarp, mesocarp removed; L–O field images; TS in horizontal orientation). A, B TS of anthetic flower %note two to three abortive ovules and strongly stained, peripheral tissue). C, D TS of anthetic flower %note two to three abortive ovules and lignifying portions of prospective mesocarp). E Young fruit %note developing endocarp and flashily pink portions of the mesocarp). F TS of postanthetic flower %note three abortive ovules and lignifying portions of prospective mesocarp). G TS of endocarp, with three developed embryos removed %note scanty endosperm). H Endocarp. J TS of endocarp. K Endocarp. L Immature fruits. M Mature fruits. N Seedlings %note short hypocotyl and long petioles of cotyledons). O Seedlings %note long hypocotyl and short petioles of cotyledons; image taken from cultivated plant, accession number 2012–0005, in the Botanical Garden Munich) %LS, longisection; TS, transverse section; ao, abortive ovule; cot, cotyledon; db, dorsal bundle; c, calyx; ec, endocarp; ens, endosperm; ex, exocarp; fr, fruit; h, hypocotyl; int, integument; lb, lateral bundle; mc, mesocarp; o, ovule; pet, petiolus; sty, style; ut, peripheral tissue; vs, ventral slit)
Fig. 6 in Adult identity crisis in Leucothrips (Thysanoptera: Thripidae) associated with the tropical ornamental plant Codiaeum variegatum (Euphorbiaceae)
Fig. 6. Divergence in the internal transcribed spacer 2 (ITS2) DNA sequence of Leucothrips specimens from Sechium edule in Costa Rica relative to those from other hosts. Sequences were aligned with MAFFT v7.293 using the G-INS-1 strategy.
Figs. 1–4 in Adult identity crisis in Leucothrips (Thysanoptera: Thripidae) associated with the tropical ornamental plant Codiaeum variegatum (Euphorbiaceae)
Figs. 1–4. Second instar larva of Leucothrips species: (1) morphotype-A abdominal tergite II spiracle at 1000× magnification; (2) morphotype-A prothorax; arrow indicates setae D6; (3) morphotype-B abdominal tergite II spiracle at 1000× magnification; (4) morphotype-B prothorax; arrow indicates setae D6; scale = 50 µm.
Fig. 5 in Adult identity crisis in Leucothrips (Thysanoptera: Thripidae) associated with the tropical ornamental plant Codiaeum variegatum (Euphorbiaceae)
Fig. 5. An unweighted pair group method with arithmetic mean (UPGMA) tree of Kimura 2-parameter distances (K2P) among the cytochrome oxidase c subunit 1 gene (COI) sequences of Leucothrips collections that are indistinguishable based on adult morphology. The optimal tree with the sum of branch length = 0.19814793 is shown. The percentage of replicate trees in which the associated taxa clustered together in the bootstrap test (1000 replicates) is shown next to the branches. The tree is drawn to scale. Analyses were conducted in MEGA version 6.
Fig. 2. Linear regression models showing the relationship between Aphis citricola and Harmonia axyridis abundance. A in Behavioral responses of Aphis citricola (Hemiptera: Aphididae) and its natural enemy Harmonia axyridis (Coleoptera: Coccinellidae) to non-host plant volatiles
Fig. 2. Linear regression models showing the relationship between Aphis citricola and Harmonia axyridis abundance. A: Catnip (Nepeta cataria) + French marigold (Tagetes patula), B: ageratum (Ageratum houstonianum) + French marigold, C: catnip + ageratum, and D: native vegetation.
Fig. 6 in Behavioral responses of Aphis citricola (Hemiptera: Aphididae) and its natural enemy Harmonia axyridis (Coleoptera: Coccinellidae) to non-host plant volatiles
Fig. 6. Typical chromatograms obtained from headspace collections of volatiles from French marigold (Tagetes patula) (B) and catnip (Nepeta cataria) (C). A, air control.
Fig. 9 in Behavioral responses of Aphis citricola (Hemiptera: Aphididae) and its natural enemy Harmonia axyridis (Coleoptera: Coccinellidae) to non-host plant volatiles
Fig. 9. An Aphis citricola infestation model showing the effects of aromatic plant volatiles. Solid arrows refer to positive effects. Dotted lines refer to negative effect. The thickness of the arrows indicates the magnitude of the effects. The model includes data from this study and the studies by Song et al. (2013) and Chen et al (2014).
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.