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Dataset results
202 results for “contractility”
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (8)
<p>Microscopy imaging of the contractility assay for donor 1, 18h, hpl</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (17)
<p>Microscopy imaging of the contractility assay for donor 2, 1h, hpl</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (19)
<p>Microscopy imaging of the contractility assay for donor 2, 1h, no cells dmem</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (21)
<p>Microscopy imaging of the contractility assay for donor 2, 22h, hpl</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (12)
<p>Microscopy imaging of the contractility assay for donor 1, 24h, dmem</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (11)
<p>Microscopy imaging of the contractility assay for donor 1, 18h, no cells hpl</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (13)
<p>Microscopy imaging of the contractility assay for donor 1, 24h, hpl</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (10)
<p>Microscopy imaging of the contractility assay for donor 1, 18h, inib</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (20)
<p>Microscopy imaging of the contractility assay for donor 2, 22h, dmem inib</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (22)
<p>Microscopy imaging of the contractility assay for donor 2, 22h, dmem</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (16)
<p>Microscopy imaging of the contractility assay for donor 2, 1h, dmem inib</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (15)
<p>Microscopy imaging of the contractility assay for donor 2, 1h, dmem</p>
Microscopy imaging of the contractility assay for 2 donors in the different conditions and timepoints (23)
<p>Microscopy imaging of the contractility assay for donor 2, 22h, no cells</p>
Contractile activity-specific transcriptome response to acute endurance exercise and training in human skeletal muscle
<p>Supplemental Figure for a study <strong>Contractile activity-specific transcriptome response to acute endurance exercise and training in human skeletal muscleи </strong> <a href="https://www.ncbi.nlm.nih.gov/pubmed/30779632#">Am J Physiol Endocrinol Metab.</a> 2019 Feb 19. <strong> </strong> https://www.ncbi.nlm.nih.gov/pubmed/30779632</p>
Contractile activity-specific transcriptome response to acute endurance exercise and training in human skeletal muscle
<p>Supplemental Tables for a study <strong>Contractile activity-specific transcriptome response to acute endurance exercise and training in human skeletal muscle </strong> <a href="https://www.ncbi.nlm.nih.gov/pubmed/30779632#">Am J Physiol Endocrinol Metab.</a> 2019 Feb 19. <strong> </strong>https://www.ncbi.nlm.nih.gov/pubmed/30779632</p>
Dynamic loading of human engineered heart tissue enhances contractile function and drives a desmosome-linked disease phenotype (TEM data)
<p>This is the TEM imaging data for the desmosome analysis as reported in the manuscript titled "Dynamic loading of human engineered heart tissue enhances contractile function and drives a desmosome-linked disease phenotype."</p>
Sensor location affects skeletal muscle contractility parameters measured by tensiomyography
<p><span>Tensiomyography (TMG) is a non-invasive method for measuring contractile properties of skeletal muscle that is increasingly being used in research and practice. However, the lack of standardization in measurement protocols mitigates the systematic use in sports medical settings. Therefore, this study aimed to investigate the effects of lower leg fixation and sensor location on TMG-derived parameters. Twenty-two male participants underwent TMG measurements on the m. biceps femoris (BF) in randomized order with and without lower leg fixation (fixed vs. non-fixed). Measurements were conducted at 50% of the muscle's length (BF-mid) and 10 cm distal to this (BF-distal). The sensor location affected the contractile properties significantly, both with and without fixation. Delay time (T<sub>d</sub>) was greater at BF-mid compared to BF-distal (fixed: 23.2 ± 3.2 ms vs. 21.2 ± 2.7 ms, <em>p</em> = 0.002; non-fixed: 24.03 ± 4.2 ms vs. 21.8 ± 2.7 ms, <em>p</em> = 0.008), as were maximum displacement (D<sub>m</sub>) (fixed: 5.3 ± 2.7 mm vs. 3.5 ± 1.7 mm, <em>p</em> = 0.005; non-fixed: 5.4 ± 2.5 mm vs. 4.0 ± 2.0 mm, <em>p</em> = 0.03), and contraction velocity (V<sub>c</sub>) (fixed: 76.7 ± 25.1 mm/s vs. 57.2 ± 24.3 mm/s, <em>p</em> = 0.02). No significant differences were revealed for lower leg fixation (all <em>p</em> > 0.05). In summary, sensor location affects the TMG-derived parameters on the BF. Our findings help researchers to create tailored measurement procedures in compliance with the individual goals of the TMG measurements and allow adequate interpretation of TMG parameters.</span></p>
Effect of Dry Needling on Muscle Mechanical Properties and Muscle Contractility in Latent Trigger Points
ClinicalTrials.gov study NCT04466813. IPD Sharing: NO. Countries: 1. Publications: 1.
Influence of Pantoprazole on Human Myocardial Contractility at Patients With Congestive Heart Failure
ClinicalTrials.gov study NCT00699361. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Using MRI in Patients With Non-dystrophic Myotonia to Access Muscle Contractility
ClinicalTrials.gov study NCT04808388. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
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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.
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.