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562 results for “genetic divergences”

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dryad32/100

Data from: Genetic and morphometric divergence in threespine stickleback in the Chignik catchment, Alaska

Divergent selection pressures induced by different environmental conditions typically lead to variation in life history, behaviour and morphology. When populations are locally adapted to their current environment, selection may limit movement into novel sites, leading to neutral and adaptive genetic divergence in allopatric populations. Subsequently, divergence can be reinforced by development of pre- or post-zygotic barriers to gene flow. The threespine stickleback, Gasterosteus aculeatus, is a primarily marine fish that has invaded freshwater repeatedly in postglacial times. After invasion, the established freshwater populations typically show rapid diversification of several traits as they become reproductively isolated from their ancestral marine population. In this paper we examine the genetic and morphometric differentiation between sticklebacks living in an open system comprising a brackish water lagoon, two freshwater lakes, and connecting rivers. By applying a set of microsatellite markers, we disentangled the genetic relationship of the individuals across the diverse environments and identified two genetic populations: one associated with brackish and the other with the freshwater environments. The 'brackish' sticklebacks were larger and had a different body shape than those in freshwater. However, we found evidence for upstream migration from the brackish lagoon into the freshwater environments, as fish that were genetically and morphometrically similar to the lagoon fish were found in all freshwater sampling sites. Regardless, few F1-hybrids were identified and it therefore appears that some pre- and/or post-zygotic barriers to gene flow rather than geographic distance are causing the divergence in this system.

opencc-zeroDec 2013View details →
dryad32/100

Data from: Genetic divergence between the sympatric queen morphs of the ant Myrmica rubra

Pairs of obligate social parasites and their hosts, where some of the parasites have recently diverged from their host through intraspecific social parasitism, provide intriguing systems for studying the modes and processes of speciation. Such speciation, probably in sympatry, has also been propounded in the ant Myrmica rubra and its intraspecific social parasite. In this species, parasitism is associated with queen size dimorphism, and the small microgyne has become a social parasite of the large macrogyne. Here, we investigated the genetic divergence of the host and the parasite queen morphs in 11 localities in southern Finland, using nuclear and mitochondrial markers of queens and workers. We formulated and tested four speciation-related hypotheses that differed in the degree of genetic divergence between the morphs. The queen morphs were genetically distinct from each other with little hybridization. In the nuclear data, when localities were nested within queen morphs in the hierarchical amova, 39% of the genetic variation was explained by the queen morph (standardized F'CT = 0.63, uncorrected FCT = 0.39), whereas 18% was explained by the locality (F'SC = 0.39, FSC = 0.29). This result corroborated the hypothesis of advanced sympatric speciation. In contrast, the mitochondrial DNA could not settle between the hierarchical levels of locality and queen morph, thus substantiating equally the hypotheses of incipient and advanced sympatric speciation. Together, our results support the view that the microgynous parasite has genetically diverged from its macrogynous host to the level of a nascent species.

opencc-zeroDec 2014View details →
dryad32/100

Data from: Genetic constraints predict evolutionary divergence in Dalechampia blossoms

If genetic constraints are important, then rates and direction of evolution should be related to trait evolvability. Here we use recently developed measures of evolvability to test the genetic constraint hypothesis with quantitative genetic data on floral morphology from the Neotropical vine Dalechampia scandens (Euphorbiaceae). These measures were compared against rates of evolution and patterns of divergence among 24 populations in two species in the D. scandens species complex. We found clear evidence for genetic constraints, particularly among traits that were tightly phenotypically integrated. This relationship between evolvability and evolutionary divergence is puzzling, because the estimated evolvabilities seem too large to constitute real constraints. We suggest that this paradox can be explained by a combination of weak stabilizing selection around moving adaptive optima and small realized evolvabilities relative to the observed additive genetic variance.

opencc-zeroDec 2013View details →
dryad32/100

Data from: Diversification in continental island archipelagos: new evidence on the roles of fragmentation, colonization and gene flow on the genetic divergence of Aegean Nigella (Ranunculaceae)

Background and Aims: Disentangling the relative roles of past fragmentation (vicariance), colonization (dispersal) and post-divergence gene flow in the genetic divergence of continental island organisms remains a formidable challenge. Amplified fragment length polymorphisms (AFLPs) were used to (1) gain further insights into the biogeographical processes underlying the Pleistocene diversification of the Aegean Nigella arvensis complex; (2) evaluate the role of potential key factors driving patterns of population genetic variability (mating system, geographical isolation and historical contingencies); and (3) test the robustness of conclusions previously drawn from chloroplast (cp) DNA. Methods: Genetic diversity was analysed for 235 AFLP markers from 48 populations (497 individuals) representing 11 taxa of the complex using population genetic methods and Bayesian assignment tests. Key Results: Most designated taxa are identifiable as genetically distinct units. Both fragmentation and dispersal-driven diversification processes occurred at different geological time scales, from Early to Late Pleistocene, specifically (1) sea barrier-induced vicariant speciation in the Cyclades, the Western Cretan Strait and Ikaria; and (2) bi-regional colonizations of the 'Southern Aegean Island Arc' from the Western vs. Eastern Aegean mainland, followed by allopatric divergences in Crete vs. Rhodos and Karpathos/Kasos. Outcrossing island taxa experienced drift-related demographic processes that are magnified in the two insular selfing species. Population genetic differentiation on the mainland seems largely driven by dispersal limitation, while in the Central Aegean it may still be influenced by historical events (island fragmentation and sporadic long-distance colonization). Conclusions: The biogeographical history of Aegean Nigella is more complex than expected for a strictly allopatric vicariant model of divergence. Nonetheless, the major phylogeographical boundaries of this radiation are largely congruent with the geography and history of islands, with little evidence for ongoing gene exchange between divergent taxa. The present results emphasize the need to investigate further biological and landscape features and contemporary vs. historical processes in driving population divergence and taxon diversification in Aegean plant radiations.

opencc-zeroDec 2017View details →
zenodo32/100

FIGURE 15. Schematic maps showing interpopulational genetic divergences within P in Taxonomic revision of Phascogale tapoatafa (Meyer, 1793) (Dasyuridae; Marsupialia), including descriptions of two new subspecies and confirmation of P. pirata Thomas, 1904 as a ' Top End' endemic

FIGURE 15. Schematic maps showing interpopulational genetic divergences within P. tapoatafa (sensu lato) for cytochrome b (ranges of pairwise raw sequence divergences): a) divergences between the 'Top End' population and each other regional population; and b) divergences among all populations of P. tapoatafa, excluding the 'Top End' population.

opennotspecifiedDec 2015View details →
zenodo32/100

Figure 4 in Data from: Genetic isolation between two recently diverged populations of a symbiotic fungus

Figure 4 Cesults cf tSe randcmizaticn test fcr (a) SigSer meicfaunal taxa and (b) nematcde genera. Standard deviations are scown as vertical bars. Tce sample sizes witc an asterisk reveal tce significant differences of tce Scannon-Wiener index from tce otcer sample sizes.

opennotspecifiedDec 2015View details →
zenodo32/100

Figure 3 in Data from: Genetic isolation between two recently diverged populations of a symbiotic fungus

Figure 3 Scatterplcts by ccrrespcndence analysis cf (a) SigSer meicfaunal taxa and (b) nematcde genera. Tce abundance data cave been square root transformed.

opennotspecifiedDec 2015View details →
zenodo32/100

Figure 2 in Data from: Genetic isolation between two recently diverged populations of a symbiotic fungus

Figure 2 Dendrcgrams based cn tSe similarity cf tSe Mcrisita-Hcrn index fcr (a) SigSer meicfaunal taxa and (b) nematcde genera. SC, replicates from tce unvegetated quadrat; SEA, SEB, and SEC, replicates from eacc seagrass quadrat. Numbers indicate tce number of replicates.

opennotspecifiedDec 2015View details →
zenodo32/100

Figure 1 in Data from: Genetic isolation between two recently diverged populations of a symbiotic fungus

Figure 1 Map cf tSe sampling site in SSiSlang (Ludac) witS indicaticn cf tSe quadrats. SC, unvegetated quadrat; SEA, SEB, and SEC, seagrass quadrats.

opennotspecifiedDec 2015View details →
zenodo32/100

Genetic divergence in the natural regeneration of black poplar along the Vistula River in Poland

<p><strong>The dataset comprises nuclear microsatellite data (PCR products lengths) used in the paper "Genetic divergence in the natural regeneration of black poplar along the Vistula River in Poland".</strong></p> <p><strong>Abstract:&nbsp;</strong>Many years of land use transformation within river valleys have drastically changed these ecosystems. Black poplar is a tree species characteristic of riparian habitats. Unfortunately, due to specific environmental requirements, its populations have difficulties with natural regeneration. Here, we genotyped 623 black poplar individuals from four populations located along different sections of the Vistula River. This river, which is the largest in Poland, is characterized by the variable degrees of regulation and transformation of its natural environment. Each black poplar population consisted of a group of mature trees and a group of naturally regenerated trees. Our main goal was to assess the differences between the gene pools of mature trees and natural regenerations. The results showed that all populations were characterized by high and comparable values of the parameters of genetic diversity. Despite this, we distinguished 2-3 genetic clusters (depending on the method). The genetic differentiation among the natural regeneration groups was almost twice as high as that among the mature tree groups. The gene pools of most natural regenerations diverged from the gene pools of mature tree groups except for one population. This was also the only population where fully generative regeneration occurred, growing in the least transformed middle section of the river. Our research confirms the need to monitor seedlings and saplings along major rivers and to conduct molecular analyses to assess their gene pools. It can be assumed that due to the lack of suitable areas for seed germination, black poplar will reproduce mainly vegetatively, which may be a way to ensure the survival of the species. However, the adaptive potential of the youngest generations is unknown, especially in the face of progressive climate change. We conclude that to preserve black poplar genetic resources, ex situ protection in the form of local clone archives is necessary.</p>

opencc-by-4.0Nov 2024View details →
zenodo32/100

Distribution. Angola, DR Congo, Malawi, Mozambique, Tanzania, and Zambia. Description. Head-body 46:5-47-8 cm (males), 44-45-5 cm (females), tail 40-43 cm (males), 38-39 cm (females), hindfoot 8:7-9-8 cm (males), 8-9 cm (females), ear 4-7-5-4 cm (males), 5-1-5-8 cm (females); weight 1-3-2 kg. The coat color is pale ocher, with brownish or grayish tones; melanistic individuals are quite common. The throat and chest are blackish, and the ventral pelage varies from creamy white to dirty white. The stripes and spots on the body vary from different hues of brown to black. The nuchal stripes run as two parallel lines from the nape to the shoulders, where they diverge and enlarge towards the elbows; they are not so conspicuously marked as in other genet species. Below them, a pair of thinner stripes and small spots are scattered on the shoulders and sides of the neck. A third pair of thinner, parallel stripes runs down the neck between the nuchal stripes, extending to about one fourth of the mid-dorsal line, where they vanish or diverge as the first row of flank spots. The black mid-dorsal line is continuous and is flanked on each side by four rows of oblong to squared spots, and by a few small-scattered spots below. There is a dorsal erectile crest. The face has a dark mask and a pair of white sub-ocular spots. The tail has seven to nine black rings, alternating with pale rings; the intervening white spaces are pigmented with a brownish tinge on the dorsal midline. The width of the pale rings relative to the dark rings in the middle of the tail is 50-75%; the tip of the tail is dark. The hindlimbs and forelimbs are black; there are white hairs on the metacarpals and metatarsals. [he posterior parts of the feet are dark. There are two pairs of teats. The posterior chamber of the auditory bulla is not ventrally inflated and has a continuous curve line on the external side. The ratio between the inter-orbital constriction and frontal width is 1-00 + 0-12. Dental formula: 13/3, C1/1,P 4/4, M 2/2 = 40. in Viverridae

Distribution. Angola, DR Congo, Malawi, Mozambique, Tanzania, and Zambia. Description. Head-body 46:5-47-8 cm (males), 44-45-5 cm (females), tail 40-43 cm (males), 38-39 cm (females), hindfoot 8:7-9-8 cm (males), 8-9 cm (females), ear 4-7-5-4 cm (males), 5-1-5-8 cm (females); weight 1-3-2 kg. The coat color is pale ocher, with brownish or grayish tones; melanistic individuals are quite common. The throat and chest are blackish, and the ventral pelage varies from creamy white to dirty white. The stripes and spots on the body vary from different hues of brown to black. The nuchal stripes run as two parallel lines from the nape to the shoulders, where they diverge and enlarge towards the elbows; they are not so conspicuously marked as in other genet species. Below them, a pair of thinner stripes and small spots are scattered on the shoulders and sides of the neck. A third pair of thinner, parallel stripes runs down the neck between the nuchal stripes, extending to about one fourth of the mid-dorsal line, where they vanish or diverge as the first row of flank spots. The black mid-dorsal line is continuous and is flanked on each side by four rows of oblong to squared spots, and by a few small-scattered spots below. There is a dorsal erectile crest. The face has a dark mask and a pair of white sub-ocular spots. The tail has seven to nine black rings, alternating with pale rings; the intervening white spaces are pigmented with a brownish tinge on the dorsal midline. The width of the pale rings relative to the dark rings in the middle of the tail is 50-75%; the tip of the tail is dark. The hindlimbs and forelimbs are black; there are white hairs on the metacarpals and metatarsals. [he posterior parts of the feet are dark. There are two pairs of teats. The posterior chamber of the auditory bulla is not ventrally inflated and has a continuous curve line on the external side. The ratio between the inter-orbital constriction and frontal width is 1-00 + 0-12. Dental formula: 13/3, C1/1,P 4/4, M 2/2 = 40.

opennotspecifiedJan 2009View details →
dryad32/100

Linking genetic, morphological, and behavioural divergence between inland island and mainland deer mice

<p>The island syndrome hypothesis (ISH) stipulates that, as a result of local selection pressures and restricted gene flow, individuals from island populations should differ from individuals within mainland populations. Specifically, island populations are predicted to contain individuals that are larger, less aggressive, more sociable, and that invest more in their offspring. To date, tests of the ISH have mainly compared oceanic islands to continental sites, and rarely smaller spatial scales such as inland watersheds. Here, using a novel set of genome-wide SNP markers in wild deer mice (Peromyscus maniculatus) we conducted a genomic assessment of predictions underlying the ISH in an inland riverine island system: analysing island-mainland population structure, and quantifying heritability of phenotypes thought to underlie the ISH. We found clear genomic differentiation between island and mainland populations and moderate to high marker-based heritability estimates fo r overall variation in traits previously found to differ in line with the ISH between mainland and island locations. FST outlier analyses highlighted 12 loci associated with differentiation between mainland and island populations. Together these results suggest that the island populations examined are on independent evolutionary trajectories, the traits considered have a genetic basis (rather than phenotypic variation being solely due to phenotypic plasticity). Coupled with the previous results showing significant phenotypic differentiation between island and mainland groups in this system, this study suggests that the ISH can hold even on a small spatial scale.</p>

opencc-zeroDec 2021View details →
zenodo32/100

Figure 27. Dorsal habitus, females. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 27. Dorsal habitus, females. A, vertex Pseudoanthidium kaspareki (Between Kula and Usak, Turkey); B, vertex P. rozeni (Hanna, Pakistan); C, mesonotum P. kaspareki (Between Kula and Usak, Turkey); D, mesonotum P. rozeni (Hanna, Pakistan); E, metasoma P. kaspareki (Between Kula and Usak, Turkey); F, metasoma P. rozeni (Hanna, Pakistan).

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 23. Gonostyli. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 23. Gonostyli. A, Pseudoanthidium palestinicum (Nahal Keziv, Israel); B, P. cribratum (Karatau, Kazakhstan); C, P. canariense (Santa Cruz de Tenerife, Canary Islands); D, P. tropicum (Bandar Abbas, Iran); E, P. kaspareki (Side, Turkey); F, P. rozeni (Hanna, Pakistan).

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 22 in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 22. Distribution of A, Pseudoanthidium palestinicum; B, P. cribratum; C, P. canariense; D, P. tropicum.

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 19. Lectotype Pseudoanthidium tenellum. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 19. Lectotype Pseudoanthidium tenellum. A, dorsal view; B, lateral view; C, T1–T3; D, labels.

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 17. Dorsal habitus, females. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 17. Dorsal habitus, females. A, vertex Pseudoanthidium stigmaticorne (Arzens, France); B, vertex P. cribratum (Bukhara, Uzbekistan); C, mesonotum P. stigmaticorne (Arzens, France); D, mesonotum P. cribratum (Bukhara, Uzbekistan); E, metasoma P. stigmaticorne (Arzens, France); F, metasoma P. cribratum (Bukhara, Uzbekistan).

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 13. S2, males. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 13. S2, males. A, Pseudoanthidium nanum (Dordogne, France); B, P. scapulare (Argèles-sur-Mer, France); C, P. stigmaticorne (Cabanes de Fleury, France); D, P. tenellum (Krasnoperekopsk, Crimea); E, P. palestinicum (Jerusalem, Israel); F, P. cribratum (Ayelet Hashar, Israel); G, P. kaspareki (Side, Turkey); H, P. rozeni (Hanna, Pakistan).

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 11. Sternal combs. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 11. Sternal combs. A, Pseudoanthidium nanum (Dordogne, France); B, P. scapulare (Argèles-sur-Mer, France); C, P. stigmaticorne (Cabanes de Fleury, France); D, P. tenellum (Krasnoperekopsk, Crimea); E, P. palestinicum (Jerusalem, Israel); F, P. cribratum (Ayelet Hashar, Israel); G, P. kaspareki (Side, Turkey); H, P. rozeni (Hanna, Pakistan).

opennotspecifiedSep 2021View details →
zenodo32/100

Figure 12. S3, males. A in Paraphyly and low levels of genetic divergence in morphologically distinct taxa: revision of the Pseudoanthidium scapulare complex of carder bees (Apoidea: Megachilidae: Anthidiini)

Figure 12. S3, males. A, Pseudoanthidium nanum (Dordogne, France); B, P. scapulare (Argèles-sur-Mer, France); C, P. stigmaticorne (Cabanes de Fleury, France); D, P. tenellum (Krasnoperekopsk, Crimea); E, P. palestinicum (Jerusalem, Israel); F, P. cribratum (Ayelet Hashar, Israel); G, P. kaspareki (Side, Turkey); H, P. rozeni (Hanna, Pakistan).

opennotspecifiedSep 2021View details →

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Allen Brain Atlas

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allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

DANDI Archive for NWB datasets

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dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record