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.
141
datasets available to search
ShareScore release 0.7.1
Dataset results
141 results for “Rattus rattus”
Invasive species and thermal squeeze: Distribution of two invasive predators and drivers of ship rat (Rattus rattus) invasion in mid-elevation Fuscospora forest
This data package is from a trapping network set up in Craigieburn Forest Park, New Zealand, in 2013. These are records of the stoats and rats caught in the traps each time the traps were checked by volunteers since 2013. Associated long term air temperature and seedfall data from the Craigieburn area is also provided. If the original trapping records (containing more mammalian catch information such as weasels and cats) are required please contact the data providers.
Figure 2 in Necrophagous or predators? The role of Pheidole radoszkowskii Mayr (Hymenoptera: Formicidae) on Rattus norvegicus (Berkenhout) carcasses (Rodentia: Muridae)
Figure 2. Average number of Pheidole radoszkowskii that exhibited necrophagous feeding behaviour – NFB – (fed on exudates and on pieces of flesh from the carcass) and predatory feeding behaviour – PFB – (predated on fly larvae).
Fig. 1 in Cryptosporidium viatorum from the native Australian swamp rat Rattus lutreolus - An emerging zoonotic pathogen?
Fig. 1. Phylogenetic relationships of small subunit of nuclear ribosomal RNA (SSU) gene nucleotide sequence data (aligned over 563 bp) of selected Cryptosporidium taxa in relation to the novel C. viatorum genotype using the neighbor joining distance method. Individual GenBank accession numbers precede species name, followed by host common name and locality descriptors. Bootstrap support values (based on 2000 iterations) are indicated next to supported branches. Cryptosporidium baileyi was chosen as the outgroup. The novel genotype from this study is in bold-type. Scale bar indicates the number of nucleotide substitutions per site.
Figs 3–4 in Dispersal History Of An Invasive Rodent In Hungary - Subfossil Finds Of Rattus Rattus
Figs 3–4. Skull (ventral view) of one of the black rats from site: 3 = Budapest, District XVII, Péceli Road (Roman Period); 4 = Dusnok–Szúnyogosi dűlő (Roman Period). Scale bars 10 mm
Fig. 1 in Dispersal History Of An Invasive Rodent In Hungary - Subfossil Finds Of Rattus Rattus
Fig. 1. Investigated archaeological sites in Hungary with small mammal fauna. = open air sites with using flotation method, black rat absence; = open air/cave sites with using flotation method,
Occupancy model for Rattus spp. in high and low human human refuse supplementation conditions
<p>Globally, the genus <em>Rattus </em>is one of the most influential exotic species due to its high rates of competitive exclusion and large dietary breadth. However, the specific foraging strategies of urban and urban-adjacent populations remain largely unknown. We examined <em>Rattus </em>spp. dependency on human food supplementation in a peri-urban population. Through a natural experiment made possible by the COVID-19 shelter in place order in Santa Cruz California, USA, we measured changes in activity between invasive rats and native rodents with and without human supplementation. We measured invasive rat presence in normal (pre-COVID) conditions near dining halls and similar waste sources, and again under COVID lockdown conditions where all sources of human supplementation were removed. We found a decrease in <em>Rattus </em>presence after the removal of human refuse (p < 0.001), while native small mammal presence remained unchanged. These results have strong conservation implications, as they suggest that proper waste management is an effective, targeted, and less-invasive form of population control over conventional forms of poison. </p>
Stowaways Supplement S3: Ma'agan Mikhael B Rattus rattus Cranial and Post-cranial Measurements Datasheet
<p>Table S3-1. Measurements of MMB R. rattus crania, after Lepus protocol in von den Driesch (1976: figs. 18a, b). All measurements in mm. N-dash represents a measurement that was not applicable or not available based on the element’s state of preservation.</p> <p>Table S3-2. Measurements of MMB R. rattus mandibles, after Lepus protocol in von den Driesch (1976: fig. 25). All measurements in mm. N-dash represents a measurement that was not applicable or not available based on the element’s state of preservation.</p> <p>Table S3-3. Measurements of selected MMB R. rattus post-cranial bones. GL=greatest length, GB=greatest breadth, Bp=proximal breadth, Bd=distal breadth. All measurements in mm. N-dash represents a measurement that was not applicable or not available based on the element’s state of preservation.</p> <p>***Version 2 added two new specimens from the September 2022 excavation season.</p>
Stowaways Supplement Table S4: Ma'agan Mikhael B Rattus rattus Bone Surface Modifications and Taphonomic Analysis Datasheet
<p>Bone surface modifications and taphonomic analysis dataset. Data includes catalogue number, fragmentation, Munsell color code, color notes, cut marks, burning, sand abrasion stage, and marine corrosion degree. For a detailed description of the methods and references, please refer to 'Supplement S1: Methods' in the manuscript.</p> <p>***Version 2 added two new specimens from the September 2022 excavation season.</p>
Figure 1-2. Lutziella swatensis n in Description of Lutziella swatensis sp.n. (Trematoda: Dicrocoelidae) from Rattus rattus in Swat, Pakistan
Figure 1-2. Lutziella swatensis n.sp. holotype, Photomicrographs. (1) Lutziella swatensis entire specimen; (2) Embryonated eggs enlarged. Note: Entire specimens were measured in millimeter and the eggs were measured in micrometer.
Fig. 1 in Discovery and successful development of Cuterebra americana (Diptera: Oestridae) from an atypical host, Rattus rattus (Rodentia: Muridae), in Florida, U.S.A.
Fig. 1. Puparium of Cuterebra americana (Fabricius), A) puparium in profile, 24 × 13 × 12 mm l × w × h; B) extruded, yellow, elliptical anterior spiracles with subtri- angular operculum on the tergum of segments 1 to 3; C) spines on surface of puparium; and D) magnified plate-like, multi-pointed spines. This figure is displayed in color in the online version of this article.
Fig. 7 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 7. Spatial distribution of Norway rats (Rattus norvegicus) infected with Eucoleus sp. and/or with associated stomach pathology in the Downtown Eastside of Vancouver, Canada. There are no clusters of affected rats.
Fig. 6 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 6. Eucoleus sp. egg collected from a female worm embedded in the non-glandular stomach mucosa of a wild, Norway rat (Rattus norvegicus). (A) Photomicrogaph of an egg taken with correct focus (B) Photomicrogaph of the same egg as in A, but taken in an elevated focus targeting the egg shell. Note the dense network of anastomosing ridges.
Fig. 4 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 4. Female Eucoleus sp. embedded in the mucosa of non-glandular stomach of a wild, Norway rat (Rattus norvegicus). Black arrows point to the meandering nematode. Red arrows points to eggs in uterus. Blue lines indicate the width (~60 µm) of the nematode at various positions. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)
Fig. 5 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 5. Tail of a male Eucoleus sp. collected from the non-glandular stomach mucosa of a wild, Norway rat (Rattus norvegicus). Note the slender long moderately sclerotized spicule (black arrow) with cuticular spine covered spicular sheath (red arrow). Blue arrow points to posteriorly directed two minute lobes of the rudimentary pseudo bursa. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)
Fig. 2 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 2. Cross-sections of Eucoleus sp. adults (arrows) and eggs (arrowheads) within the keratin and superficial mucosa of the esophagus in a wild Norway rat (Rattus norvegicus). Scale bar = 100 µm.
Fig. 3 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 3. Eucoleus sp. eggs (arrow) embedded within hyperkeratosis (A) in the nonglandular stomach of a wild, Norway rat (Rattus norvegicus). There is mucosal hyperplasia (B) and subcutaneous granulocytic inflammation (‡). Scale bar = 100 µm.
Fig. 1 in Lesions associated with Eucoleus sp. in the non-glandular stomach of wild urban rats (Rattus norvegicus)
Fig. 1. Squamous papilloma (arrow) arising from the non-glandular stomach of a wild Norway rat (Rattus norvegicus) from Vancouver, Canada. Asterisk (‡) indicates the unaffected glandular stomach. Scale bar = 1 cm.
Figure 4. Small mammals recorded from Farasan Archipelago. A. Rhinopoma cystops. B. Asellia patrizii. C. Pipistrellus kuhlii. D. Acomys dimidiatus E. Rattus rattus. F in Small mammals from Farasan Archipelago, Saudi Arabia
Figure 4. Small mammals recorded from Farasan Archipelago. A. Rhinopoma cystops. B. Asellia patrizii. C. Pipistrellus kuhlii. D. Acomys dimidiatus E. Rattus rattus. F. Gerbillus nanus.
Fig. 1 in Rickettsiae exposure related to habitats of the oriental house rat (Rattus tanezumi, Temminck, 1844) in Salaya suburb, Thailand
Fig. 1. The oriental house rat (Rattus tanezumi) trapped in a location of Salaya suburb, near Bangkok shown in a map of Thailand (scale bar; 200 km) and the satellite view of Salaya suburb (scale bar; 2 km); showing six trap site of three distinct oriental house rat habitats including I) an agriculture field (red pin): fruit tree (a) and paddy field (b); II) an animal shelter (yellow pin): dog shelter (c) and horse stable (d) and III) a human residence (green pin): residential area (e) and fresh market (f). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Infestation and seasonal fluctuation of chigger mites on the Southeast Asian house rat (Rattus brunneusculus) in southern Yunnan Province, China
Fig. 2. Seasonal fluctuation of infestations of the Southeast Asian house rat (R. brunneusculus) with Walchia (W.) micropelta at Jingha, southern Yunnan of China (April 2016–March 2017).
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.