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.
553
datasets available to search
ShareScore release 0.9.0
Dataset results
553 results for “damselfly”
Butterfly, Dragonfly and Damselfly Species at Harvard Forest 2015
I report on preliminary observations of butterflies in small meadows in the vicinity of “Harvard Farm” (formerly Petersham Country Club) in Petersham, MA, from 16-20 July 2015. I sampled butterflies at 10 locations over five days, visiting some areas twice. I documented (with digital photography) a total of 17 recognizable species/morpho-species, as well as 2-8 additional “grass skippers” which could not be identified to species. Initially I had planned to conduct a more organized survey, but most of the property had been grazed by the time I arrived in mid-July. This, combined with the late start date, meant that flowers – and nearly all butterflies – were absent at the Harvard Farm property during my visit. Instead, I opted to opportunistically sample several un-grazed meadows in the Petersham area, including North Common Meadow near the center of town and small meadows on Harvard Forest property, to develop a species list and photographic database of as many local butterflies as possible. From these surveys, the most numerous species were clouded/orange sulfur (Colias spp.; 34 individuals observed), followed by great spangled fritillary (Speyeria cybele; n = 32) and unidentified grass-skippers (various genera; n = 32). Moderately common species (n = 8-12) included Common wood-nymph (Cercyonis pegala), American copper (Lycaena phlaeas) and cabbage white (Pieris rapae); fewer than 4 individuals were recorded of: black/spicebush swallowtail (Papilio sp.), banded hairstreak (Satyrium calanus), gray hairstreak (Strymon melinus), azure (Celastrina ladon), eastern tailed-blue (Everes comyntas), pearl crescent (Phycioides tharos), eastern comma (Polygonia comma), Appalachian brown (Satyodes appalachia), northern pearly-eye (Enodia anthedon), and silver-spotted skipper (Epargyreus claras). These observations should be taken as preliminary, but may serve as a list of the most common and conspicuous butterfly taxa during mid-summer in the Petersham area, and could inform st
Dragonfly and Damselfly populations on Nantucket Island
<p>Report and data submitted in fulfillment of a 2012 Nantucket Biodiversity Initiative grant.</p> <p>The first comprehensive survey of Odonates (dragonflies and damselflies) on Nantucket Island occurred in 1917. Four species were added to this list by 1930. In 2012, we surveyed several ponds bi-weekly for adults and larval skins to update the species list and provide records of relative abundance. We found six species of dragonflies that have colonized the island since 1930 and added two species to the island list that are migratory or irruptive. The damselflies are more complicated because of difficult or questionable identification, but there are certainly five species new to the Nantucket list and two species that have likely been extirpated since 1930.</p> <p>Files:</p> <p>allSurveyData.csv - survey for adults<br> Blyth-and-LoPresti-2013.pdf - the report itself<br> comparativeSpeciesList.csv - comparing this study data to past studies<br> dataDictionary.csv<br> keyedExuviae.csv - exuviae collected at ponds</p>
Data for 'Phenological shifts in a warming world affect physiology and life history in a damselfly'
<p>In this analysis we studied, in laboratory conditions, the impact of warming and hatching dates on key life history and physiological traits in a cannibalistic damselfly, <em>Ischnura</em> <em>elegans</em>. Larvae were reared in groups from hatching to emergence through one or two growth seasons, depending on the voltinism. Larvae were equally divided by hatching dates (early and late) and temperature treatment (current and warming). Early and late hatched groups were not mixed. This data set includes:</p> <ul> <li>survival until emergence and emergence success data</li> <li>development time (from hatching to emergence, in days)</li> <li>mass of adult insects</li> <li>growth rate (mass of adult insect/development time in days)</li> <li>protein content (μg of protein/μl of prepared homogenate)</li> <li>phenoloxidase activity (PO, value of activity curve slope)</li> <li>PO activity/protein (value of activity curve slope/(μg of protein/μl of prepared homogenate)</li> <li>insects voltinism (univoltine/semivoltine)</li> </ul>
Data from: The genomics and evolution of inter-sexual mimicry and female-limited polymorphisms in damselflies
<p>The dataset contains intermediate output files required to reproduce the figures in the main text and Supporting Material of Willink <em>et al</em>. 2023. The genomics and evolution of inter-sexual mimicry and female-limited polymorphisms in damselflies.</p> <p>FILE OVERVIEW:</p> <p>1. Morph-specific assemblies<br> A. File names: Afem_1354_ragtag.fasta.gz, Ifem_1049_ragtag.fa.gz, Ofem_0081_ragtag.fa.gz, O054_Shasta_run2.PMDV.HAP1.purged.fasta.gz, A059_Shasta_run1.PMDV.HAP1.purged.fa.gz<br> B. Description: genome assemblies for different morphs of <em>Ischnura elegans</em> (Afem_1354, Ifem_1049, and Ofem_0081) and <em>Ischnura senegalensis</em> (A059 and O054), generated in this study from long-read Nanopore data using Shasta v 0.7.0 (https://github.com/paoloshasta/shasta).</p> <p>2. Assembly statistics<br> A. File names: Assembly_statistics.csv, Assembly_statistics_sen.csv<br> B. Description: Completeness and quality metrics for <em>de novo</em> genome assemblies of <em>I. elegans</em> and <em>I. senegalensis</em> female morphs. See Fig. S1-S2.</p> <p>3. Repetitive content annotation<br> A. File names: A1354_ragtag_RED.bed.repeats.bed.gz, Afem_Shasta1_polished_ragtag_UPPER.fa.out.gz, Ifem_Shasta2_polished_ragtag_UPPER.fa.out.gz, ioIscEleg1.1.primary_UPPER.fa.out.gz, ToL_RED.repeats.bed.gz<br> B. Description: Annotation of repetitive sequences in morph-specific assemblies. All morph assemblies (A, I and Darwin Tree of Life assemblies) were annotated using RepeatModeler v 2.0.1 and RepeatMasker v 1.0.93 (http://www.repeatmasker.org). The A morph and DToL assemblies were additionally annotated using Red v 0.0.1 (https://github.com/BioinformaticsToolsmith/Red). RepeatMasker annotations were then used to estimate TE coverage. See Extended Data Fig. 4 and Fig. S7.</p> <p>4. GWAS output<br> A. File names: A1354_ragtag_AvI.assoc_filtered.txt.gz, A1354_ragtag_AvO.assoc_filtered.txt.gz, A1354_ragtag_IvO.assoc_filtered.txt.gz, ToL_AvI.assoc_filtered.txt.gz, ToL_AvO.assoc_filtered.txt.gz, ToL_IvO.assoc_filtered.txt.gz<br> B. Description: filtered SNPs in pairwise association tests between morphs (n = 19 resequencing samples per morph) of<em> I. elegans</em>. Analyses were conducted in PLINK v 1.9 (http://pngu.mgh.harvard.edu/purcell/plink/), using either the A morph assembly (Fig. 2a-b), or the Darwin Tree of Life (DToL) reference assembly (Extended Data Figure 8a-b) as mapping reference.</p> <p>5. Population statistics<br> A. File names: Afem_pixy_30K_fst.txt.gz, A1354_30kb.Tajima.D.gz, Afem_pi_30K_pi.txt.gz, ToL_30K_fst.txt.gz, ToL_30kb.Tajima.D.gz, ToL_30K_onepop_pi.txt.gz<br> B. Description: Genetic differentiation (fst) between morphs, Tajima's D statistics, and nucleotide diversity across 30 kb windows of the<em> I. elegans</em> genome. Population statistics were computed using either the A morph assembly (Fig. 2c-e), or the DToL reference assembly (Extended Data Figure 8c-e) as mapping reference.</p> <p>6. k-mer based GWAS<br> A. File names: AvI_kmers.fa.gz, AvO_kmers.fa.gz, OvAI_kmers.fa.gz, AvI_kmers.fa_v_A1354_Shasta_run1_table.tsv.gz, AvO_kmers.fa_v_A1354_Shasta_run1_table.tsv.gz, OvAI_kmers.fa_v_A1354_Shasta_run1_table.tsv.gz, OvAI_kmers.fa_v_Ifem_1049_ragtag_table.tsv.gz<br> B. Description: List of significant k-mers (in fasta format) in three k-mer based association analyses (n = 19 resequencing samples per morph) between morphs of<em> I. elegans</em>. Significant k-mers were then mapped to morph-specific assemblies using Blast v 2.22.28 (https://blast.ncbi.nlm.nih.gov/Blast.cgi) for short sequences. We include mapping results shown in Fig. 3a-b.</p> <p>7. Read-depth coverage<br> A. File names: reseq_coverage_norepeat_500_window.bed.gz, nano_coverage_norepeat_500_window.bed.gz, Ifem_nano_coverage_norepeat_500_window.bed.gz, Ifem_reseq_coverage_norepeat_500_window_15Mb.bed.gz, poolseq_coverage_norepeat_500_window.bed.gz, morph_coverage_norepeat_diff_500.tsv.gz, SwD_popmap<br> B. Description: Read depth coverage of the morph locus and a 15 mb region used to estimate baseline read depths. 19 Illumina resequencing samples, and one long-read Nanopore sample of each morph of <em>I. elegans</em> were mapped to both the A and I assemblies to estimate read depth. Two poolseq samples (each pool consisting of 30 females of each morph) of<em> I. senegalensis</em> were mapped to the A assembly of<em> I. elegans</em> to estimate read depth. Read depth was estimated in mosdepth v 0.2.8 (https://github.com/brentp/mosdepth) across 500 bp windows after filtering windows with more than 10% repetitive content. For poolseq samples, the difference in coverage values between the A and O pools was computed across the entire genome. Sample information for resequencing samples is recorded in the file SwD_popmap. See Fig. 3c-d, 5b, and S8.</p> <p>8. Assembly alignment<br> A. File names: nucmer_aln_Ifem_1049_ragtag_Afem_1354_ragtag.qr1_filter.reformat.coords.gz, nucmer_aln_Ofem_0081_ragtag_Afem_1354_ragtag.qr1_filter.reformat.coords.gz, nucmer_aln_Afem_Isen_Afem_Iele.qr1_filter.reformat.coords.gz, nucmer_aln_Ofem_Isen_Afem_Iele.qr1_filter.reformat.coords.gz, karyotype_AI_RagTag.csv, karyotype_AO_RagTag.csv, karyotype_AIsen_AIele.cs, karyotype_OIsen_AIele.csv<br> B. Description: Assembly alignments using nucmer v 4.0.0 (https://github.com/mummer4/mummer) and contig synteny for plotting using RIdeogram v 0.2.2 (https://cran.r-project.org/web/packages/RIdeogram/vignettes/RIdeogram.html) in R v 4.2.2 (https://www.r-project.org/). The A morph assembly of <em>I. elegans</em> was aligned to the I and O morph assemblies of<em> I. elegans</em> and to the A and O-like assemblies of <em>I. senegalensis</em>. See Fig. 4a, 5c.</p> <p>9. Genotyping the Darwin Tree of Life assembly<br> A. File names: nucmer_aln_Afem_ragtag_ToL-haplotigs.qr1_filter.reformat.coords.gz, nucmer_aln_Afem_ragtag_ToL-primary.qr1_filter.reformat.coords.gz, ToL_500_norepeat.regions.bed.gz, karyotype_AToL_13_unloc_RagTag.csv, karyotype_AToL_RagTag_haplotigs.csv<br> B. Description: To genotype the DToL reference assembly of<em> I. elegans</em>, we estimated read-depth coverage of the DToL long-read Pacbio data mapped to the A morph assembly of <em>I. elegans</em> generated in this study, and aligned the A morph assembly to both the primary DToL assembly and to the purged haplotigs. Read depth was estimated in mosdepth v 0.2.8 (https://github.com/brentp/mosdepth) and assembly alignments were conducted using nucmer v 4.0.0 (https://github.com/mummer4/mummer). See Fig. S3.</p> <p>10. SV calling<br> A. File names: A_to_A.bam, A_to_A.bam.bai, A_to_I.bam, A_to_I.bam.bai, A_to_O.bam, A_to_O.bam.bai, A_to_ToL_2mb.bam, A_to_ToL_2mb.bam.bai, I_to_A.bam, I_to_A.bam.bai, I_to_I.bam, I_to_I.bam.bai, I_to_O.bam, I_to_O.bam.bai, I_to_ToL_2mb.bam, I_to_ToL_2mb.bam.bai, O_to_A.bam, O_to_A.bam.bai, O_to_I.bam, O_to_I.bam.bai, O_to_O.bam, O_to_O.bam.bai, O_to_ToL_2mb.bam, O_to_ToL_2mb.bam.bai<br> B. Description: mergede alignements of resequencing samples (n = 19 per morph) to alternative reference assemblies (A, I, O, and DToL) for<em> I. elegans</em>. The alignments have been filtered by quality and to contain only the unlocalized scaffold 2 of chromosome 13, which includes the morph locus. These files were used to call morph-specific structural variants using samplot v 1.3.0 (https://github.com/ryanlayer/samplot). See Extended Data Figs 2, 7, and Fig. S5-S6.</p> <p>11. Mapping of inversion breakpoint reads<br> A. File names: AvO_3K.tsv.gz, AvO_22K.tsv.gz, AvO_sen_3K.tsv.gz, AvO_sen_22K.tsv.gz, IvO_3K.tsv.gz<br> B. Description: Signatures of an inversion with breakpoints at ~ 3 kb and ~ 22 kb of the unlocalized scaffold 2 of chromosome 13 on the O assembly were found in A and I resequencing samples of <em>I. elegans</em> and in poolseq samples of A females of <em>I. senegalensis</em>. We queried the reads mapping to the inversion breakpoints and then tabulated their mapping locations of the A morph assembly of<em> I. elegans</em> (Fig. 6 and Extended Data Fig. 3, 7b-c). For the first inversion breakpoint, we also mapped reads on the I morph assembly of <em>I.</em> elegans (Fig. S12).</p> <p>12. Evidence of translocation in I<br> A. File names: Ifem_nano_SUPER_13_unloc_2.bam, Ifem_nano_SUPER_13_unloc_2.bam.bai<br> B. Description: Long-read Nanopore data of a I morph female of <em>I. elegans</em> mapped to the A morph of <em>I. elegans</em> and filtered to contain the entire unlocalized scaffold 2 of chromosome 13. Read mapping was conducted in minimap2 v 2.22-r1110 (https://github.com/lh3/minimap2) and used to identify a translocation signature in the I morph, relative to the A morph of <em>I. elegans</em>. See Extended Data Fig. 6.</p> <p>13. PCA output<br> A. File names: A1354_all.eigenval, A1354_all.eigenvec, I1049_all.eigenval, I1049_all.eigenvec<br> B. Description: Eigenvectors and eigenvalues of PCA analyses of population structure between morphs of <em>I. elegans</em>. PCA analysis were conducted on morph locus, using either the A morph or the I morph assembly as mapping reference in PLINK v 1.9 (http://pngu.mgh.harvard.edu/purcell/plink/). See Fig. S4.</p> <p>14. Linkage disequilibrium<br> A. File names: A1354_SUPER_1_allr.ld.gz, A1354_SUPER_2_allr.ld.gz, A1354_SUPER_3_allr.ld.gz, A1354_SUPER_4_allr.ld.gz, A1354_SUPER_5_allr.ld.gz, A1354_SUPER_6_allr.ld.gz, A1354_SUPER_7_allr.ld.gz, A1354_SUPER_8_allr.ld.gz, A1354_SUPER_9_allr.ld.gz, A1354_SUPER_10_allr.ld.gz, A1354_SUPER_11_allr.ld.gz, A1354_SUPER_12_allr.ld.gz, A1354_SUPER_13_allr.ld.gz, A1354_SUPER_13_unloc_1_allr.ld.gz, A1354_SUPER_13_unloc_2_allr.ld.gz, A1354_SUPER_13_unloc_3_allr.ld.gz, A1354_SUPER_13_unloc_4_allr.ld.gz, A1354_SUPER_X_allr.ld.gz<br> B. Description: Estimates of recombination rate (R2) between SNPs across the first 15 mb of each chromosome and unlocalized segments of chromosome 13 of <em>I. elegans</em>. Recombination rates were estimated based on 57 resequencing samples and using the A morph assembly as mapping reference in PLINK v 1.9 (http://pngu.mgh.harvard.edu/purcell/plink/). See Extended Data Fig. 5.</p> <p>15. Gene annotations<br> A. File names: Afem_all_ragtag.gtf.gz, Afem_all_transcripts.transdecoder.genome.gff3.gz, Isen.gtf.gz<br> B. Description: Annotation of the A morph assembly of <em>I. elegans</em> using RNAseq data to assemble transcripts <em>de novo </em>for <em>I. elengans</em> and <em>I. senegalensis</em> in Stringtie v 2.1.4 (https://ccb.jhu.edu/software/stringtie/). Peptide sequences for the <em>I. elegans</em> transcripts were then predicted using Transdecoder v 5.5.0 (https://github.com/TransDecoder/TransDecoder).</p> <p>16. Gene annotations in the morph locus<br> A. File names: gene_models_shared_trancripts_simple.csv, gene_models_shared_trancripts_simple_I.csv<br> B. Description: locations of exon features for genes in the morphs locus and expressed in at least one adult sample of both<em> I. elegans</em> and <em>I. senegalensis</em>. Locations are given for the A and I assemblies. See Fig. 6 and S12.</p> <p>17. Gene expression<br> A. File names: DToL_gene_count_matrix.csv.gz, DToL_transcript_count_matrix.csv.gz, gene_count_matrix.csv.gz, transcript_count_matrix.csv.gz, Isen_gene_count_matrix.csv.gz, Isen_transcript_count_matrix.csv.gz, Iele_phenodata.csv, Isen_phenodata.csv<br> B. Description: Sample information (phenodata), gene and transcript count matrices for gene expression analysis. For <em>I. elegans</em>, gene expression was quantified on thoracic tissue of six adult females of each morph and six adult males (three sexually mature and three sexually immature in each group). Reads were mapped to both the A morph assembly and the DToL reference assembly. For <em>I. senegalensis</em>, we used previously published data (NCBI BioProject PRJDB11387) from different tissues of adult females of each morph and males (one upon emergence and one two days after emergence for each group) mapped to the A morph assembly. Gene and transcript counts were generated using Stringtie v 2.1.4 (https://ccb.jhu.edu/software/stringtie/). See Fig. 6, S9-S11, S13.</p> <p>18. SNPs in the morph locus<br> A. File names: A1354-ragtag-allsites-candidate_gene_cds.vcf.gz, A1354-ragtag-allsites-candidate_gene_cds.vcf.gz.tbi, vcf_popmap<br> B. Description: SNPs in 57 resequencing samples across coding sequences of the morph locus of <em>I. elegans</em>. The A morph assembly was used as mapping reference. Sample information for resequencing samples is recorded in the file vcf_popmap. See Fig. S14a.</p> <p>19. Domains and orthologues of Gastrula zinc-finger transcription factor in the morph locus<br> A. File names: GZnf_domain_annot.csv, GZnF_orthologue.tre, GZnf_orthologue_annot.txt<br> B. Description: Functional domains were annotated using InterProScan (https://www.ebi.ac.uk/interpro/). The gene orthologue tree was inferred using OrthoFinder v 2.5.2 (https://github.com/davidemms/OrthoFinder). See Fig. S14.</p>
A list of collection codes and corresponding BOLD numbers to sixty new dragonfly and damselfly species from Africa
<p>These files contain the data and accession numbers used in the following publication:</p> <p>Dijkstra, Klaas-Douwe B. et al.. (2015). Sixty new dragonfly and damselfly species from Africa (Odonata). Odonatologica 44(4): 447-678. doi:10.5281/zenodo.35388</p> <p>Contents</p> <p>- Lab (BOLD numbers)<br /> - Vouchers<br /> - Taxonomy<br /> - Specimen details<br /> - CollectionData</p> <p> </p> <p>uploaded for Odonatologica by Plazi</p>
Fig. 17 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 17. Distribution map of Prodasineura Cowley, 1934 spp. in Vietnam (blue group species including the blackish P. autumnalis (Fraser, 1922)). (●) P. autumnalis. (●) P. coerulescens (Fraser, 1932). (●) P. doisuthepensis Hoess, 2007. (●) P. hoffmanni Kosterin, 2015.
Fig. 15. Prodasineura Cowley, 1934 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 15. Prodasineura Cowley, 1934 spp., males, in nature. A. P. kong sp. nov. B. P. lancastrei sp. nov.
Fig. 14 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 14. Habitus of Prodasineura Cowley, 1934 spp. A–B. P. kong sp. nov. A. ♂, holotype, ZCDTU 2019071811-ODO. B. ♀, paratype, ZCDTU 2019071817-ODO. C–D. P. lancastrei sp. nov., C. ♂, holotype, ZCDTU 2019051212-ODO. D. ♀, paratype, ZCDTU 2019051217-ODO. Scale bar = 1 cm.
Fig. 13 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 13. Posterior pronotal lobe of prothorax of Prodasineura Cowley, 1934 spp., females, lateral and dorsal views. A–B. P. croconota Ris, 1916, ZCDTU 2017060802-ODO. C–D. P. kong sp. nov., ZCDTU 019071817-ODO. E–F. P. lancastrei sp. nov., ZCDTU 2019051217-ODO. G–H. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. Images not to scale.
Fig. 12 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 12. Head of Prodasineura Cowley, 1934 spp., frontal view. A–B. P. kong sp. nov. A. ♂, holotype, ZCDTU 2019071811-ODO. B. ♀, paratype, ZCDTU 2019071817-ODO. C–D. P. lancastrei sp. nov. C. holotype, ZCDTU 2019051212-ODO. D. ♀, paratype, ZCDTU 2019051217-ODO. Images not to scale.
Fig. 10 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 10. Wings base and genital ligula of Prodasineura Cowley, 1934 spp., males, holotypes A–B. P. kong sp. nov., ZCDTU 2019071811-ODO. C–D. P. lancastrei sp. nov., ZCDTU 2019051212-ODO. Images not to scale.
Fig. 9 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 9. Structures of Prodasineura Cowley, 1934 spp., males, holotypes. A, C–D. P. kong sp. nov., ZCDTU 2019071811-ODO. B, E–F. P. lancastrei sp. nov., ZCDTU 2019051212-ODO. A–B = head and thorax, lateral view; C, E = appendages, lateral view; D, F = appendages, dorsal view. Images not to scale.
Fig. 8. Prodasineura Cowley, 1934 spp., females. A–C. P. croconota Ris, 1916, ZCDTU 2017060802- ODO. D–E. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. F. P in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 8. Prodasineura Cowley, 1934 spp., females. A–C. P. croconota Ris, 1916, ZCDTU 2017060802- ODO. D–E. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. F. P. laidlawi (Forster in Laidlaw, 1907), modified from Asahina (1983: fig. 22). A, G–F = prothorax, lateral view; B, D = prothorax, dorsal view; C, E = tip of abdomen, lateral view. Images not to scale.
Fig. 7. Prodasineura Cowley, 1934 spp., males. A–C. P. croconota, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, D, G in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 7. Prodasineura Cowley, 1934 spp., males. A–C. P. croconota, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, D, G = tip of abdomen, dorsal view; B, E = tip of abdomen, lateral view; C, F = genital ligula, oblique-ventral view. Images not to scale.
Fig. 6. Prodasineura Cowley, 1934 spp. A–C. P. croconota Ris, 1916, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, E in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 6. Prodasineura Cowley, 1934 spp. A–C. P. croconota Ris, 1916, ZCDTU 2017060802-ODO. D–F. P. verticalis Selys, 1860, ZCDTU 2018030611-ODO. A, E = ♂, head and thorax, lateral view; C–D = ♂, synthorax, dorsal view; B, F = ♀, head and thorax, lateral view. Images not to scale.
Fig. 5 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 5. Posterior pronotal lobe of prothorax of Prodasineura Cowley, 1934 spp., females. A–B. P. autumnalis (Fraser, 1922), lateral and dorsal views. C. P. doisuthepensis Hoess, 2007, dorsal view. D–E. P. coerulescens (Fraser, 1932), lateral and dorsal views. F. P. hoffmanni Kosterin, 2015, dorsal view. (Fig. 5C, F is modified from Kosterin 2015: fig. 3c–d). Images not to scale.
Fig. 1 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 1. Prodasineura autumnalis (Fraser, 1922), ZCDTU 2017043021-ODO. A. ♂, head and thorax, lateral view. B. ♀, head and thorax, lateral view. C. Appendages, dorsal view. D. Appendages, lateral view. E. ♀, prothorax, dorsal view. F. Genital ligula, oblique-ventral view. G. ♀, tip of abdomen, lateral view. Images not to scale.
Fig. 4. Prodasineura Cowley, 1934 spp., females. A–C. P in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 4. Prodasineura Cowley, 1934 spp., females. A–C. P. coerulescens (Fraser, 1932), ZCDTU 2016100801-ODO. D–F. P. doisuthepensis Hoess, 2007, ZCDTU 2017062201-ODO. G–H. P. hoffmanni Kosterin, 2015, ZCDTU 2017062202-ODO. A, D = prothorax, lateral view; B, E, G = prothorax, dorsal view; C, F, H = tip of abdomen, lateral view (Fig. 4G–H is modified from in Kosterin 2015: fig. 4c, h). Images not to scale.
Fig. 3. Prodasineura Cowley, 1934 spp., males. A–B, E. P in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 3. Prodasineura Cowley, 1934 spp., males. A–B, E. P. coerulescens (Fraser, 1932), ZCDTU 2016100801-ODO. C–D, F. P. doisuthepensis Hoess, 2007, ZCDTU 2017062201-ODO. G–I. P. hoffmanni Kosterin, 2015, ZCDTU 2017062202-ODO. A, C, G = tip of abdomen, dorsal view; B, D, H = tip of abdomen, lateral view. E–F, I: Genital ligula, oblique-ventral view. Images not to scale.
Fig. 2. Prodasineura Colwey, 1934 in A revision of the systematics and distribution of the damselfly genus Prodasineura Cowley, 1934 (Odonata: Zygoptera: Platycnemididae) in Vietnam with description of two new species
Fig. 2. Prodasineura Colwey, 1934 spp., head and thorax, lateral view (A, C, E: ♂, B, D, F: ♀) A–B. P. coerulescens (Fraser, 1932), ZCDTU 2016100801-ODO. C–D. P. doisuthepensis Hoess, 2007, ZCDTU 2017062201-ODO. E–F. P. hoffmanni Kosterin, 2015, ZCDTU 2017062202-ODO (E). Fig. 2F is modified from Kosterin (2015: fig. 2a), from Dak Dam village, Mondulkiri Province, Cambodia. Images not to scale.
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.