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FIGURE 4 in On the occurrence of Holochilus chacarius (Cricetidae: Sigmodontinae) in Brazil, with taxonomic notes on Holochilus species

FIGURE 4: Dorsal and ventral view of skulls of Holochilus spp. A: H. chacarius (MZUSP 35144). B: H. sciureus (MZUSP 35269). C: H. brasiliensis (MZUSP 2692). Scale bar: 10 mm.

opencc-by-4.0Mar 2015View details →
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Figure 6 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 6. Results of the Bayesian Analysis of Population Structure (BAPS) of the Necromys lasiurus Cytochrome b sequences compiled in the present study, showing the four genetic clades, which are color-coded. The vertical black lines separate the sample groups. Insert map shows the Brazilian biomes.

opencc-by-4.0Jun 2024View details →
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Figure 7 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 7. Mismatch distribution of the Necromys lasiurus samples from the Rio de Janeiro state, Brazil. The observed frequencies are shown in red, and the expected frequencies, in green.

opencc-by-4.0Jun 2024View details →
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Figure 8 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 8. Plot of the DIYABC Random Forest simulations for the five hypothetical demographic scenarios proposed for the Necromys lasiurus groups (Atlantic Forest ecoregion, Atlantic Forest domain of Rio de Janeiro state, and Arid Diagonal ecoregion), and the location of the observed data, used to validate the best scenario. In this analysis, scenario 1 received 99 "votes", scenario 2, 398 "votes", scenario 3, 229 "votes", and scenario 4, 76 "votes", with 198 "votes" for scenario 5.

opencc-by-4.0Jun 2024View details →
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Figure 4 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 4. Haplotype network of the Necromys lasiurus Cytochrome b sequences analyzed in the present study, color-coded according to the results of the Bayesian Analysis of Population Structure (BAPS; see Fig. 6). (AF–RJ) Atlantic Forest domain of Rio de Janeiro state. Mutational steps are indicated with stripes.

opencc-by-4.0Jun 2024View details →
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Figure 3 in Intragonadal evaluation of sexual steroid hormones during three reproductive events in two species of Peromyscus (Rodentia: Cricetidae)

Figure 3. Fluctuations of each intraovarian [SSH] in the ∆4 pathway throughout three reproductive events in two species of Peromyscus. Mean concentrations of sexual steroid hormones, [SSH], were obtained from estrous cycle, pregnancy and lactation in free-living, adult females of P. melanotis (A) and P. difficilis (B). Symbology as in Fig. 2. Note that scales differ; complete ANOVA information is available in Table S2.

opencc-by-4.0Mar 2024View details →
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Figure 5 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 5. Haplotype network of the Necromys lasiurus Cytochrome b sequences obtained in the present study from localities in the Atlantic Forest and Pampa biomes (AF), color-coded by locality. (ARG) Argentina, (MS) Mato Grosso do Sul, (MG) Minas Gerais, (PY) Paraguay, (PR) Paraná, (RJ) Rio de Janeiro, (RS) Rio Grande do Sul, (SC) Santa Catarina, (SP) São Paulo. Mutational steps are indicated with stripes.

opencc-by-4.0Jun 2024View details →
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Figure 2 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 2. The demographic scenarios formulated for testing in the DIYABC Random Forest analysis. Pop1 = Arid Diagonal ecoregion (AD), Pop2 = Atlantic Forest ecoregion (AF), Pop3 = Atlantic Forest of Rio de Janeiro state (AF-RJ). The scenarios tested here were: (1) AD as the ancestral population of AF, which originates AF-RJ, (2) AD as the ancestral population, which mixes with AF before originating AF-RJ, (3) AF-RJ as the ancestral population, which mixes with AF before originating AD, (4) AD as the ancestral population of AF and AF-RJ, and (5) AD as the ancestral population, mixing with AF-RJ before originating AF.

opencc-by-4.0Jun 2024View details →
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Figure 3 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses

Figure 3. Consensus phylogenetic tree produced by the Maximum Likelihood (ML) and Bayesian Inference (BI) analyses of the Cytochrome b sequences of Necromys lasiurus included in the present study. The clades are color-coded according to the results of the Bayesian Analysis of Population Structure (BAPS; see Fig. 6). The samples shaded green are from Atlantic Forest domain of Rio de Janeiro state. The circles at each branch represent the bootstrap values of the ML (left semi-circles) and the posterior probabilities of the BI (right semi-circles). In the left semi-circles, white indicates bootstrap values of 0.40–0.66, while gray represents values of 0.66–0.90, and black, values of over 0.90. In the right semi-circles, white indicates a posterior probability of less than 0.64, with gray representing posterior probabilities of 0.64–0.90, and black, values of over 0.90.

opencc-by-4.0Jun 2024View details →
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Figure 1 in Intragonadal evaluation of sexual steroid hormones during three reproductive events in two species of Peromyscus (Rodentia: Cricetidae)

Figure 1. Intraovarian contents of selected ∆ 4 pathway's SSH in two Peromyscus species. Sexual steroid hormones (SSH: progesterone, P4; androstenedione, A; testosterone, T; estradiol, E2) were obtained from free-living, adult females of P. melanotis (A) and P. difficilis (B), during a complete estrous cycle (CEC: proestrus to diestrus), and after ovulation (vertical arrows) followed by fecundation in a successful estrous cycle (SEC: proestrus, estrus + early gestation 1 and late gestation 2 + overall lactation); note that proestrus and estrus data from CEC are duplicated in SEC). The oogenetic and anabolic/ catabolic phases of the ovarian cycle are also depicted (see Table 1).

opencc-by-4.0Mar 2024View details →
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Text-fig. 2. Fossil remains of Cricetus cf. runtonensis NEWTON, 1909 from Za Hájovnou Cave (Moravia, Czech Republic), Middle Pleistocene. a–b) lower molar row (a – occlusal view, b – lingual view); c) m1 dext., occlusal view; d–e) left mandible fragment with incisor (d – lingual view, e – buccal view); f) calcaneus sin., anterior view. in Cricetus Cf. Runtonensis (Newton, 1909) (Cricetidae, Rodentia) From Za Hájovnou Cave (The Czech Republic)

Text-fig. 2. Fossil remains of Cricetus cf. runtonensis NEWTON, 1909 from Za Hájovnou Cave (Moravia, Czech Republic), Middle Pleistocene. a–b) lower molar row (a – occlusal view, b – lingual view); c) m1 dext., occlusal view; d–e) left mandible fragment with incisor (d – lingual view, e – buccal view); f) calcaneus sin., anterior view.

opencc-by-4.0Oct 2014View details →
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Figure 4 in Microtus guentheri (Danford & Alston, 1880) (Rodentia: Cricetidae) as a biomonitor for radionuclides in Mersin Province of Turkey

Figure 4. Distributions of the radiation hazard index values by locality (values around the circle show the numbers of localities).

opencc-by-4.0Feb 2016View details →
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Figure 3. Relationship between activity concentrations for 40K in Microtus guentheri (Danford & Alston, 1880) (Rodentia: Cricetidae) as a biomonitor for radionuclides in Mersin Province of Turkey

Figure 3. Relationship between activity concentrations for 40K as a function of altitude (significant).

opencc-by-4.0Feb 2016View details →
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Figure 4 in Review of unique odd chromosome-numbered underground rodent species of the Palearctic region: Ellobius lutescens Thomas 1897 (Rodentia: Cricetidae)

Figure 4. Dorsal (a), ventral (b), and lateral (c) views of cranium and lateral view (d) of mandible of an adult male Ellobius lutescens (Dicle University, Faculty of Science, Department of Biology, Zoology Lab. Mammal collection number 741, from 20 km south of Iğdır, Turkey).

opencc-by-4.0Dec 2015View details →
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Figure 2 in Review of unique odd chromosome-numbered underground rodent species of the Palearctic region: Ellobius lutescens Thomas 1897 (Rodentia: Cricetidae)

Figure 2. Photograph of an adult Ellobius lutescens from Iğdır, Turkey. Photograph by Y Coşkun, collected on 24 April 2013.

opencc-by-4.0Dec 2015View details →
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Figure 1 in Distribution and current status of Cricetulus migratorius (Mammalia: Cricetidae) in Bulgaria, with comments on its status in the Balkans

Figure 1. Degree of fragmentation of Cricetulus migratorius mandibles found in the diets of different avian predators; from left to right: A. heliaca, A. noctua, and T. alba.

opencc-by-4.0Jan 2016View details →
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Figure 2 in Distribution and current status of Cricetulus migratorius (Mammalia: Cricetidae) in Bulgaria, with comments on its status in the Balkans

Figure 2. Distribution of Cricetulus migratorius in Bulgaria (1- Straka, 1962; 2- Simeonov, 1964a, 1964b; this study; 3–6- Milchev, 2009; 7–8- Markov, 1964; 9- Markov, 1960; 10- Peshev et al., 1960; 11- Peshev et al., 1960; this study; 12- Georgiev, 2004; this study; 13–14- Georgiev, 2004; 15- this study).

opencc-by-4.0Jan 2016View details →
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Figure 2 in Rediscovered after half a century: a new record of the grey dwarf hamster, Cricetulus migratorius (Mammalia: Cricetidae), in Romania

Figure 2. Mandible of Cricetulus migratorius in comparison to other hamster species present in Romania (from top to bottom: A. Cricetulus migratorius, Botoşani, 10 Mar 2007; B. Mesocricetus newtoni, Măcin, 21 Oct 2013; C. Cricetus cricetus, Jigodin Bai, 02 May 2010, all from owl pellets).

opencc-by-4.0May 2018View details →
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Fig. 2 in Rodentolepis microstoma isolated from different species of Sigmodontinae rodents (Rodentia: Cricetidae) in the Cuenca del Plata, Argentina: Morphological aspects and molecular characterization

Fig. 2. Scanning electron micrographs of Rodentolepis microstoma: (A) scolex with invaginated rostellum, lateral view; (B) scolex with invaginated rostellum, apical view; (C) acicular filitriches (mature proglottids). Histological section of Rodentolepis microstoma: (D) testes (t), ovary (o), external seminal vesicle (esv), cirrus sac (cs) and cirrus (c) in mature proglottid.

opencc-by-4.0Dec 2022View details →
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Fig. 5 in Rodentolepis microstoma isolated from different species of Sigmodontinae rodents (Rodentia: Cricetidae) in the Cuenca del Plata, Argentina: Morphological aspects and molecular characterization

Fig. 5. Phylogenetic tree of Rodentolepis spp. (Hymenolepididae: Cestoda) based on concatenated cox1 mitochondrial and ITS1 ribosomal DNA. Phylogenetic tree inferred using Bayesian method. Maximum Likelihood bootstrap values of clades are listed first, followed by Bayesian Posterior Probabilities respectively, for clade frequencies exceeding 65%.

opencc-by-4.0Dec 2022View details →

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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.

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OpenNeuro

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Last verified 2026-04-29Open record