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.
25
datasets available to search
ShareScore release 0.9.0
Dataset results
25 results for “Neogobius”
FIGURE 3 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 3. Sagittal otoliths of: A – B: N. pallasi (TL: 95 mm); A, male; B, female. C – D: N. caspius (TL: 95 mm); C, male; D, female. E – F: N. melanostomus (TL: 95 mm); E, male; F, female.
FIGURE 2 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 2. SEM micrograph of sagittal otolith of a 60 mm specimen of Neogobius pallasi and its features.
Fig. 4 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 4. Dendrogram for Euclidian distances between otolith contours of round goby (n = 786) from nine sampling areas, sampled during three years of study. Stippled line represents five clusters representing pairs of similar sampling sites. It shows that similarity of the sampling sites does not follow the pattern of their allocation chain along the coast of the Black sea visible in fig. 1.
Fig. 1 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 1. Map of the study area with sampling localities: 1 — Lake Yalpuh; 2 — Snake Island; 3 — Dniester Estuary; 4 — Gulf of Odesa; 5 — Khadzhibey Estuary; 6 — Tylihul Estuary; 7 — Dnipro-Bug Estuary; 8 — Dzharylhach Bay; 9 — Obytichna Bay of the Sea of Azov.
Fig. 2 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 2. Basic morphometric characters used for the shape description of the round goby otoliths. At the internal surface: 1 — dorsal part; 2 — ventral part; 3 — anterior margin; 4 — posterior margin; 5 — rostrum; 6 — pararostrum; 7 — acoustic groove.
Fig. 3 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 3. The visualized reconstruction of the round goby otolith contour features predicated upon the first six Principal components (see Material and method for details).
Figure 4 in Histopathological observations in Neogobius bathybius (Actinopterygii: Gobiidae) infected by Dichelyne minutus (Nematoda: Cucullanidae) in the Caspian Sea, Iran
Figure 4. Cross-section of parasitized fish intestinal epithelium: a) hyperplastic epithelium cells (arrowheads); b) congested blood vessels, veins (arrows); c and d) nodule-like structures via intense hyperplastic submucosal tissue, resulted in deeper folds and e) focal necrosis (star) and thickened muscular layer (2-headed arrow); f) increased number of goblet cells (arrows). M = mucous, s = submucosa, and mus = musculature.
Figure 1 in Histopathological observations in Neogobius bathybius (Actinopterygii: Gobiidae) infected by Dichelyne minutus (Nematoda: Cucullanidae) in the Caspian Sea, Iran
Figure 1. Anterior part of Dichelyne minutus: a) large pseudobuccal capsule; b) posterior end of esophagus; c) anterior ventral cecum; d) nerve ring.
Figure 2 in First record of round goby Neogobius melanostomus Pallas, 1814 (Pisces: Gobiidae) in Bosnia and Herzegovina
Figure 2. Neogobius melanostomus from Una river.
Figure 4 in Otolith shape analysis of three gobiid species of the Northwestern Black Sea and characterization of local populations of Neogobius melanostomus
Figure 4. – Discrimination of the three species by otolith shape analysis.
Characterization of the reproductive strategy of invasive round goby (Neogobius melanostomus) in the Upper Danube River
Open the record for dataset details and reuse information.
Data from: Invasion strategies in round goby (Neogobius melanostomus): is bigger really better?
Few studies have systematically investigated mid- or long-term temporal changes of biological characteristics in invasive alien species considering the different phases of an invasion. We studied the invasion performance of one of the most invasive species worldwide, the round goby Neogobius melanostomus, from total absence over first occurrence until establishment from 2010 to 2015 in the upper Danube River. After an upstream movement of the invasion front of about 30 river km within four years, the pattern that round goby pioneering populations significantly differ from longer established ones has been confirmed: Pioneering populations at the invasion front comprised more females than males, and adult specimens with a larger body size compared to those at longer inhabited areas. On the population-level, the proportion of juveniles increased with time since invasion. The results of this study provide support for the previously postulated ´bigger is better´ and ´individual trait utility´ hypotheses explaining invasion success in round goby. Pioneering invaders with their greater exploratory behavior, highly adaptive phenotypic plasticity and increased competitive ability seem to act as prime emperors of new habitats, strongly following and benefiting from man-made river-bank structures.
FIGURE 2 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 2. SEM micrograph of sagittal otolith of a 60 mm specimen of Neogobius pallasi and its features.
FIGURE 3 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 3. Sagittal otoliths of: A–B: N. pallasi (TL: 95 mm); A, male; B, female. C–D: N. caspius (TL: 95 mm); C, male; D, female. E–F: N. melanostomus (TL: 95 mm); E, male; F, female.
Round goby Neogobius melanostomus genome annotation
<p>Annotation file for the round goby genome (sequence deposited as “RGoby_Basel_V2”, BioProject accession PRJNA549924, BioSample SAMN12099445, GenBank genome accession VHKM00000000, release date July 22 2019). </p> <p>Supplementary Material S1 for Adrian-Kalchhauser et al, BMC Biology, The round goby genome provides insights into mechanisms that may facilitate biological invasions.</p> <p>The round goby genome assembly was annotated using Maker v2.31.8. Two iterations were run with assembled transcripts from round goby embryonic tissue and data from eleven other actinopterygian species available in the ENSEMBL database as well as the SwissProt protein set from the uniprot database as evidence (downloaded March 2, 2016). In addition, an initial set of reference sequences obtained from a closely related species, the sand goby (<em>Pomatoschistus minutus</em>), sequenced by the IMAGO marine genomes project of the CeMEB consortium at University of Gothenburg, Sweden was included. The second maker iteration was run after first training the gene modeler SNAP version 2006-07-28 based on the results from the first run. Augustus v3.2.2 was run with initial parameter settings from zebrafish (<em>Danio rerio</em>). Repeat regions in the genome were masked using RepeatMasker known elements and repeat libraries from Repbase as well as <em>de novo</em> identified repeats from the round goby genome assembly obtained from a RepeatModeler analysis.</p>
Supplementary material 1 from: van Deurs M, Moran NP, Schreiber Plet-Hansen K, Dinesen GE, Azour F, Carl H, Møller PR, Behrens JW (2021) Impacts of the invasive round goby (Neogobius melanostomus) on benthic invertebrate fauna: a case study from the Baltic Sea. NeoBiota 68: 19-30. https://doi.org/10.3897/neobiota.68.67340
S1. Sampling Areas (Figure S1); S2. Taxonomic Groupings S1; S3. Model Specifications (Table S2); S4. Sensitivity Analyses (Table S3, Figure S2)
Data from: Invasion strategies in round goby (Neogobius melanostomus): is bigger really better?
Open the record for dataset details and reuse information.
FIGURE 4 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 4. Linear regression between total length and otolith area in three species of Neogobius.
FIGURE 1 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 1. Location of sampling sites.
Figure 3 in Histopathological observations in Neogobius bathybius (Actinopterygii: Gobiidae) infected by Dichelyne minutus (Nematoda: Cucullanidae) in the Caspian Sea, Iran
Figure 3. Cross-sections of nonparasitized fish intestinal epithelium: a) normal arrangement of villi and structure of intestinal epithelium; b) normal feature of mucosa (m) and goblet cells (arrows) and c) normal blood vessels, muscular-arteries (arrowheads), and veins (arrows); d) normal distribution and number of goblet cells (arrows).
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.