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273 results for “Systems Biology”
Figure 4 from: Weigand A (2013) New Zospeum species (Gastropoda, Ellobioidea, Carychiidae) from 980 m depth in the Lukina Jama–Trojama cave system (Velebit Mts., Croatia). Subterranean Biology 11: 45-53. https://doi.org/10.3897/subtbiol.11.5966
Figure 4 - Zospeum species. A Zospeum tholussum holotype B Zospeum pretneri from locus typicus, which demonstrates the lowest genetic distance to Zospeum tholussum C Second Zospeum sp. from the Lukina Jama–Trojama cave system.
Figure 6 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 6 - Figure 6. CCA for environmental variables and biotic data of 11 sampling sites from São Domingos karst area and surroundings, central Brazil (ORP= redox potential; T = temperature; OD= concentration of O2; DO = oxygen saturation and cond=conductivity). Red abbreviations represent the taxa: Rot = Rotifera; An = Anuraeopsis sp.; Br.f = Brachionus falcatus; Br= Brachionus sp.; Col = Collotheca sp.; Con = Conochilus sp.; Fil = Filinia sp.; Gas = Gastropus sp.; Kel= Kellicotia bostoniensis; K.ct= Keratella cochelaris tecta; K.co = Keratella cochelaris; Le c= Lecanidae; L.sp = Lecane sp.; L.mo = Lecane monostyla sp.; Plo = Ploimida; Sin = Synchaeta sp.; Tes = Testudinella sp.; Tri = Trichocerca sp.; Bde = Bdelloidea; Cy= Cyclopoida; Cal = Calanoida; Har = Harpacticoida; Bos = Bosmina; Cla = Cladocera; Per = Peridinium sp.; Ins = Insecta; Chi = Chironomidae; Cha = Chaoboridae; Sim = Simuliidae; Nem = Nematoda; A.cos = Arcella costata. X words represent the sampling sites (described at Table 1): X1=AngD01; X2=AngD02; X3=BAraD; X4=BAraP; X5=AngEk; X6=SBerEk; X7=BezS; X8=PalmEp; X9=BAraEp; X10=AngEp and X11=SDEp.
Figure 5 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 5 - Figure 5. Similarity Cluster Analysis (Sorensen, single linkage) for 16 sampling sites from São Domingos karst area and surroundings, Goiás state, central Brazil. Abbreviations are described in Table 1.
Figure 4 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 4 - Figure 4. Number of taxa recorded in 16 sampling sites. Total taxa for epigean (21) and subterranean habitats (30).
Figure 3 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 3 - Figure 3. Subterranean river (A São Bernardo Cave) and drips (in blue) formed by infiltration water (B Angélica Cave – AngD01). Photography: a, Adriano Gambarini; b, Maria Elina Bichuette.
Figure 3 from: Weigand A (2013) New Zospeum species (Gastropoda, Ellobioidea, Carychiidae) from 980 m depth in the Lukina Jama–Trojama cave system (Velebit Mts., Croatia). Subterranean Biology 11: 45-53. https://doi.org/10.3897/subtbiol.11.5966
Figure 3 - Columellar fold views of Zospeum tholussum. The columellar fold of the broken paratype specimen shell is shown in clockwise rotation.
Figure 1 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 1 - Horizons in karst: 1 soil 2 karst terrain 3 limestone outcrop; 4 epikarst 5 aquifer in epikarst 6 drips 7 doline 8 cave 9 and 10 subterranean river at the base level 11 resurgence 12 epigean river A epikarstic zone B vadose zone C phreatic or saturated zone. (Ilustration: Pedro Pereira Rizzato).
Figure 2 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 2 - Study area map with details of subterranean cave systems and epigean rivers at São Domingos karst area and surroundings, Goiás state, central Brazil. In dark gray – limits of Terra Ronca State Park (TeRSP). A São Domingos river B Angélica Cave C Bezerra Cave D São Mateus Cave E Buraco das Araras Cave F Terra Ronca I Cave (sinkhole of Lapa river) G Palmeiras river H São Bernardo Cave I Revolucionários Cave (this cave is located outside the limits of Terra Ronca State Park).
Figure 1 from: Weigand A (2013) New Zospeum species (Gastropoda, Ellobioidea, Carychiidae) from 980 m depth in the Lukina Jama–Trojama cave system (Velebit Mts., Croatia). Subterranean Biology 11: 45-53. https://doi.org/10.3897/subtbiol.11.5966
Figure 1 - The Lukina Jama–Trojama cave system. Overview of the geographical position and 3D cave cross-section. In the latter, the region of collected shells (1) and the collection site of the living specimen of Zospeum tholussum (2) are indicated. The 3D cross-section was provided by D. Bakšić et al. (2010), Croatian Speleological Server, http://www.speleologija.hr/lukinajama. Photos were taken by J. Bedek.
Figure 5 from: Trajano E, Carvalho MR (2017) Towards a biologically meaningful classification of subterranean organisms: a critical analysis of the Schiner-Racovitza system from a historical perspective, difficulties of its application and implications for conservation. Subterranean Biology 22: 1-26. https://doi.org/10.3897/subtbiol.22.9759
Figure 5 - Highly troglomorphic catfish, genus Rhamdiopsis (Siluriformes: Heptapteridae), a relict from Campo Formoso karst area, northeastern Brazil (Photo: Dante Fenolio).
Figure 2 from: Trajano E, Carvalho MR (2017) Towards a biologically meaningful classification of subterranean organisms: a critical analysis of the Schiner-Racovitza system from a historical perspective, difficulties of its application and implications for conservation. Subterranean Biology 22: 1-26. https://doi.org/10.3897/subtbiol.22.9759
Figure 2 - Interrelationships between evolutionary (historical) and ecological (present-day) factors, defining the conditions of trogloxenes versus troglophiles versus troglobites for subterranean organisms.
Figure 1 from: Trajano E, Carvalho MR (2017) Towards a biologically meaningful classification of subterranean organisms: a critical analysis of the Schiner-Racovitza system from a historical perspective, difficulties of its application and implications for conservation. Subterranean Biology 22: 1-26. https://doi.org/10.3897/subtbiol.22.9759
Figure 1 - Trichomycterus itacarambiensis (Siluriformes: Trichomycteridae), troglobitic catfish from eastern Brazil, showing intrapopulation variation in pigmentation and eye development (Photos: Dante Fenolio). A pigmented individual, with reduced eyes and pigmentation B albino (DOPA (–) individual, with very reduced eyes, not visible externally.
Figure 4 from: Trajano E, Carvalho MR (2017) Towards a biologically meaningful classification of subterranean organisms: a critical analysis of the Schiner-Racovitza system from a historical perspective, difficulties of its application and implications for conservation. Subterranean Biology 22: 1-26. https://doi.org/10.3897/subtbiol.22.9759
Figure 4 - Ctenus fasciatus (Arachnida: Araneae), a common troglophile in caves from southeastern Brazil (Photo: Renata Nunes).
Figure 3 from: Trajano E, Carvalho MR (2017) Towards a biologically meaningful classification of subterranean organisms: a critical analysis of the Schiner-Racovitza system from a historical perspective, difficulties of its application and implications for conservation. Subterranean Biology 22: 1-26. https://doi.org/10.3897/subtbiol.22.9759
Figure 3 - Acutisoma spelaeum (Arachnida: Opilioes), an obligatory trogloxene from caves in southeastern Brazil: female taking care of eggs (Photo: Renata Nunes).
Figure 2 from: Rasoloariniaina JR, Ganzhorn JU, Riemann JC, Raminosoa N (2016) Water quality and biotic interaction of two cavefish species: Typhleotris madagascariensis Petit, 1933 and Typhleotris mararybe Sparks & Chakrabarty, 2012, in the Mahafaly Plateau groundwater system, Madagascar. Subterranean Biology 18: 1-16. https://doi.org/10.3897/subtbiol.18.8321
Figure 2 - Significant relationships between the abundance of Typhleotris madagascariensis and Typhleotris mararybe and water characteristics.
A quantitative autonomous bioluminescence reporter system with a wide dynamic range for Plant Synthetic Biology
<p>This data set includes: Luminescence (NeoLuc Luminescence), Fluorescence (eGFP) , NeoLuc/eGFP ratios, Area Under The Curve of NeoLuc/eGFP ratios, Normalized Area Under The Curve of Neoluc/eGFP (FBP-RTAs), Firefly Luciferase luminescence (FLuc), Renilla Luciferase luminescence (RLuc), FLuc/RLuc ratios and Normalized FLuc/RLuc values of all experiments in this work. </p>
H7N9 Vaccination With and Without AS03 and Unadjuvanted H3N2v Vaccination: Standard and Systems Biology Analyses
ClinicalTrials.gov study NCT02921997. IPD Sharing: Not stated. Countries: 1. Publications: 0.
Systems Biological Analysis of Immune Responses to RSV Vaccine
ClinicalTrials.gov study NCT07185399. IPD Sharing: YES. Countries: 1. Publications: 0.
Systems Biology of Zoster Vaccine
ClinicalTrials.gov study NCT04047979. IPD Sharing: YES. Countries: 1. Publications: 0.
Effect of NMN Supplementation on Organ System Biology
ClinicalTrials.gov study NCT04571008. IPD Sharing: Not stated. Countries: 1. Publications: 0.
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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)
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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.