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Dataset results
372 results for “functional group”
Correlates of Electrophysiological Activities in Different Pelvic Floor Muscle Groups and Female Pelvic Floor Function
ClinicalTrials.gov study NCT04482426. IPD Sharing: Not stated. Countries: 0. Publications: 0.
Investigating the Relationship Between Physical Function, Comorbidity and Cytogenetic Risk Group in Older Adults With Acute Myelogenous Leukemia (AML)
ClinicalTrials.gov study NCT02662933. IPD Sharing: Not stated. Countries: 0. Publications: 0.
The Effect of Erythropoietin Usage in Renal Function After Kidney Transplantation, in Early Phase, in Contrast to Placebo Group
ClinicalTrials.gov study NCT00617474. IPD Sharing: Not stated. Countries: 0. Publications: 0.
Focus Groups on Cognitive Function in Psychosis
ClinicalTrials.gov study NCT06364241. IPD Sharing: NO. Countries: 0. Publications: 0.
Maternal Asthma During Pregnancy Imprints Fetal Lung Group 2 Innate Lymphoid Cells and Enhances Their Function in Adulthood [scATAC-Seq]
GEO Series GSE262716. Mus musculus. 4 samples. Type: Genome binding/occupancy profiling by high throughput sequencing.
tRNA m1A modification is essential for gut homeostasis and function of group 3 innate lymphoid cells
GEO Series GSE267755. Mus musculus. 6 samples. Type: Expression profiling by high throughput sequencing.
Ten-year follow-up of cardiac function and neural regulation in a group of amateur half-marathon runners
<p>Dataset from De Maria B, de Oliveira Gois M, Catai AM, Marra C, Lucini D, Porta A, Pagani M, Dalla Vecchia LA. Ten-year follow-up of cardiac function and neural regulation in a group of amateur half-marathon runners. Open Heart. 2021 Feb;8(1):e001561. doi: 10.1136/openhrt-2020-001561. PMID: 33563778; PMCID: PMC7875294.</p> <p>Abstract</p> <p><strong>Objective: </strong>In the last years, a debate exists about type, intensity and frequency of physical exercise that is really indicated to protect healthy subjects from cardiovascular disease. Regular physical training has been associated with an improved cardiovascular risk profile, but it has also been demonstrated that strenuous and uncontrolled physical exercise could be dangerous, in terms of increased cardiovascular morbidity and mortality. In the present study, we evaluated a group of 35 amateur half-marathon runners, who were likewise studied 10 years before (B). The results of B suggested that an increased cardiac sympathetic modulation could potentially represent a negative prognostic factor. The aim of this follow-up was to assess the medium-long-term effects of moderate to vigorous physical training on the cardiovascular neural control, cardiac function and occurrence of cardiovascular diseases.</p> <p><strong>Methods: </strong>Each enrolled subject underwent: (1) an interview and physical examination to ascertain the presence of cardiovascular disease; (2) standing test to evaluate the cardiovascular neural control by means of heart rate variability (HRV), arterial blood pressure (AP) variability and baroreflex sensitivity (BRS); (3) transthoracic echocardiography to evaluate cardiac function.</p> <p><strong>Results: </strong>At 10-year follow-up (FU), in this group of middle-aged athletes the occurrence of cardiovascular diseases was low, not unlike that of the overall population. The results of HRV analysis showed a decreased sympathetic and increased vagal modulation directed to the heart, compared with B. In addition, HRV, AP variability and BRS indices showed a physiological response to active standing. Finally, athletes had normal echocardiographic measures.</p> <p><strong>Conclusion: </strong>We conclude that in our group of athletes a regular moderate-vigorous physical training through the 10 years was quite beneficial as the prevalence of sympathetic cardiac modulation observed at B was not accompanied by increased cardiovascular risk, on the contrary a slight prevalence of vagal indices was observed at FU.</p>
Climate shifts root: shoot ratio pattern by altering plant functional group on Tibetan vs. Inner Mongolian Plateaus
<p><strong>Title:</strong> Climate shifts root: shoot ratio pattern by altering plant functional group in alpine vs temperate grasslands on both Tibetan and Inner Mongolian Plateaus</p> <p>by Wu<em> et al</em>.</p> <p><strong>Study areas and sample sites:</strong></p> <p>Environmental and ecological surveys were conducted along a temperate grassland transect in Inner Mongolian Plateau and an alpine grassland transect in Tibetan Plateau in China, at ends of the plant growth peak growing season from 2017 to 2020. We laid out 54 sample sites along the two broad ranges of geographic transects on the two plateaus, with 3-5 sample plots at each sample site (a total of 215 plots).</p>
Climate shifts root: shoot ratio pattern by altering plant functional group on Tibetan vs. Inner Mongolian Plateaus
<p>Environmental and ecological surveys were conducted along a temperate grassland transect in Inner Mongolian Plateau and an alpine grassland transect in Tibetan Plateau in China, at ends of the plant growth peak growing season from 2017 to 2020. We laid out 54 sample sites along the two broad ranges of geographic transects on the two plateaus, with 3-5 sample plots at each sample site (a total of 215 plots).</p>
Example simulation showing spatial and temporal variations in surface carbon biomass of plankton functional groups during a Spring bloom as shown by a 3D hydrodynamic-biogeochemical model (FVCOM-ERSEM), with and without integration of the mixoplankton paradigm.
<p>The outputs are from simulations from using the FVCOM hydrodynamic model coupled to two different versions of ERSEM – (i) ERSEM and (ii) ERSEM-PB (the latter includes the implementation of the mixoplankton paradigm through integration of the 'Perfect Beast' PB model; Flynn and Mitra 2009 <em>Journal of Plankton Research</em>).</p> <p>The FVCOM domain was configured to represent Lyme Bay: a protected bay on the South Coast of England. This region is an important area for shellfish aquaculture. The domain was configured at 350 m – 5 km high-resolution, resolving sub-km scale dynamics in the area. A nested modelling approach of increasing model resolution was set up using two model domains. For the coupled hydrodynamic-biogeochemical model, a parent domain of 1.5 km – 10 km resolution was used to drive Lyme Bay model domain. The atmospheric forcing was provided by a 3-step downscaling of GFS global datasets to reach the 3 km of the final model domain using the Weather Research Forecast (WRF) model. Hydrodynamic boundary conditions are extracted from the European Copernicus Marine System North West European Shelf Forecast system. River flows were extracted from a National scale hydrology model run by the Center for Hydrology and Ecology in the UK. Simulations were initialised at Jan 1<sup>st</sup> 2005, and spun up for 3 months prior to the output of the data visualised in these videos. </p> <p>The 6 videos portray spatial and temporal variation of daily averaged surface carbon biomass (μgC L<sup>-1</sup>) during the month of April 2005 for the different plankton functional types (FTs) as follows:</p> <ul> <li>Video 1: all phytoplankton FTs in standard ERSEM grouped together. These thus include diatoms, nano-, pico- and micro- plankton; i.e., these simulations do not discriminate between phytoplankton and constitutive mixoplankton (CM).</li> <li>Video 2: phytoplankton FT in ERSEM-PB now considering only diatoms and picoplankton (i.e., cyanobacteria) only; CM are now included in Video 3 outputs.</li> <li>Video 3: all mixoplankton FTs grouped together in ERSEM-PB. These outputs thus include biomasses of micro-CM, nano-CM and NCM.</li> <li>Video 4: all zooplankton FTs grouped together in standard ERSEM. Thus, these include nanoflagellates, meso- and micro- zooplankton and thus includes the primary producing non-constitutive mixoplankton</li> <li>Video 5: zooplankton FT representing only the heterotrophic nano- and micro- zooplankton in ERSEM-PB.</li> <li>Video 6: spatio-temporal variability between the constitutive and non-constitutive mixoplankton functional groupings within FVCOM-ERSEM-PB. </li> </ul> <p>For further information about the mixoplankton paradigm, please see the following open access publications and references there in:</p> <p>Mitra A, Caron DA, Faure E, Flynn KJ, Leles SG, Hansen PJ, McManus GB, Not F, Gomes HR, Santoferrara L, Stoecker DK, Tillmann U (2023) <strong>The Mixoplankton Database – diversity of photo-phago-trophic plankton in form, function and distribution across the global ocean</strong>. <em>Journal of Eukaryotic Microbiology</em>, e12972. <a href="https://doi.org/10.1111/jeu.12972">https://doi.org/10.1111/jeu.12972</a></p> <p>Glibert PM, Mitra A (2022) <strong>From webs, loops, shunts, and pumps to microbial multitasking: evolving concepts of marine microbial ecology, the mixoplankton paradigm, and implications for a future ocean</strong>. <em>Limnology and Oceanography</em> 67: 585-597 <a href="https://doi.org.10.1002/lno.12018">https://doi.org.10.1002/lno.12018</a> </p> <p>Mitra A, Irigoien X (2022) <strong>Mixoplankton – Marine Organisms that break the rules</strong>. EU Researcher. <a href="https://issuu.com/euresearcher/docs/mixitin_eur28_h_res">https://issuu.com/euresearcher/docs/mixitin_eur28_h_res</a> </p> <p>Flynn KJ, Mitra A, Anestis K, Anschütz AA, Calbet A, et al. (2019) <strong>Mixotrophic protists and a new paradigm for marine ecology: where does plankton research go now?</strong> <em>Journal of Plankton Research</em> 41: 375-391 <a href="https://doi.org/10.1093/plankt/fbz026">https://doi.org/10.1093/plankt/fbz026</a></p>
Data set from Ranucci M, Aloisio T, Di Dedda U, Menicanti L, de Vincentiis C, Baryshnikova E; Surgical and Clinical Outcome REsearch (SCORE) group. Gender-based differences in platelet function and platelet reactivity to P2Y12 inhibitors. PLoS One. 2019 Nov 27;14(11):e0225771. doi: 10.1371/journal.pone.0225771. PMID: 31774869; PMCID: PMC6881030.
<p>Data set from Ranucci M, Aloisio T, Di Dedda U, Menicanti L, de Vincentiis C, Baryshnikova E; Surgical and Clinical Outcome REsearch (SCORE) group. Gender-based differences in platelet function and platelet reactivity to P2Y12 inhibitors. PLoS One. 2019 Nov 27;14(11):e0225771. doi: 10.1371/journal.pone.0225771. PMID: 31774869; PMCID: PMC6881030.</p> <p>This is the article:</p> <p><strong>Background: </strong> Gender influences platelet biology. Women have a larger platelet count, but gender-based differences in platelet function remain debated. We performed a study addressing gender-based differences in platelet function using point-of-care platelet function tests (PFT).</p> <p><strong>Methods: </strong> The patient population consisted of 760 cardiac surgery patients where preoperative PFT (multiple-electrode aggregometry [MEA]) were available. Platelet count and function at the ADPtest and TRAPtest were compared in the overall population and separately in patients with or without residual effects of P2Y12 inhibitors.</p> <p><strong>Results: </strong> Women had a significantly (P = 0.001) higher platelet count but a non-significantly higher platelet reactivity to ADP. In clopidogrel-treated patients, the platelets ADP reactivity was significantly (P = 0.031) higher in women, and platelet count was the main determinant of platelet hyper-reactivity. Within patients under full clopidogrel effects, women with a platelet count ≥ 200,000 cells/μL had a significantly (P = 0.023) higher rate of high-on-treatment platelet reactivity (HTPR, 45.5%) with respect to males with a platelet count < 200,000 cells/μL (11.9%), with a relative risk of 6.2 (95% confidence interval 1.4-29).</p> <p><strong>Conclusions: </strong> Our findings confirm that women have a larger platelet count than men, and that this is associated to a trend towards a higher platelet reactivity. HTPR is largely represented in women with a high platelet count. This generates the hypothesis that women requiring P2Y12 inhibitors could potentially benefit from larger doses of drug or should be treated with anti-platelet agents with a low rate of HTPR.</p>
Effects of root hemiparasite Escobedia grandiflora (Orobanchaceae) on southern Brazilian grasslands: diversity, composition, and functional groups
<p>Data of plant cover from four locations</p>
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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)
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.