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10 results for “FRAP”

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dryad40/100

Early Drosophila Spaghetti-Squash-GFP FRAP

Open the record for dataset details and reuse information.

publicJan 2023View details →
zenodo36/100

ROS-Specific Huntingtin Interactions: Huntingtin chromatin retention dynamics by FRAP with veliparib

<p>Measurement of&nbsp;huntingtin chromatin recruitment dynamics by fluorescence recovery after photobleaching (FRAP) of the YFP-tagged huntingtin-specific intrabody, nucHCB2, under conditions of oxidative stress and PARP inhibition</p>

opencc-by-4.0Jul 2019View details →
zenodo32/100

Raw confocal imaging and FRAP data for "Tuning levels of low-complexity domain interactions to modulate endogenous oncogenic transcription"

<p><strong>Raw confocal imaging and FRAP data of &quot;Tuning levels of low-complexity domain interactions to modulate endogenous oncogenic transcription&quot;</strong></p> <p>Shasha Chong<sup>1</sup>, Thomas G.W. Graham<sup>2</sup>, Claire Dugast-Darzacq<sup>2,5</sup>, Gina M. Dailey<sup>2</sup>, Xavier Darzacq<sup>2,5</sup>, Robert Tjian<sup>2,3,4,5</sup>*</p> <p><sup>1&nbsp;</sup>Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, CA, USA</p> <p><sup>2&nbsp;</sup>Department of Molecular and Cell Biology, University of California, Berkeley, CA, USA.</p> <p><sup>3&nbsp;</sup>Howard Hughes Medical Institute, University of California, Berkeley, CA, USA.</p> <p><sup>4</sup><sup>&nbsp;</sup>Li Ka Shing Center for Biomedical &amp; Health Sciences, University of California, Berkeley, CA, USA.</p> <p><sup>5</sup><sup>&nbsp;</sup>CIRM Center of Excellence, University of California, Berkeley, CA.&nbsp;</p> <p>* Lead contact</p> <p><strong>Overview</strong></p> <p>This repository contains 1) raw three-color confocal fluorescence&nbsp;images of a transiently expressed protein (mNeonGreen-EWS, mNeonGreen,&nbsp;EGFP-TAF15, EGFP, mNeonGreen-EWS-NPM1, or&nbsp;mNeonGreen-NPM1), endogenously expressed EWS::FLI1-Halo labeled with JFX549 Halo ligand, and intron RNA fluorescence in situ hybridization (FISH) targeting&nbsp;<em>ABHD6</em>,&nbsp;<em>CAV1</em>, or<em> GAPDH&nbsp;</em>in genome-edited A673 cells,&nbsp;2) raw fluorescence recovery after photobleaching (FRAP) movies of&nbsp;endogenously expressed EWS::FLI1-Halo labeled with TMR Halo ligand in&nbsp;genome-edited A673 cells in the presence and absence of transient expression of&nbsp;mNeonGreen-EWS-NPM1.&nbsp;The imaging data, after being processed, were used to generate Figure 1D-G (also&nbsp;S1A,&nbsp;S3, and S4), 2E-G (also S5A and&nbsp;S7), 3C-E (also&nbsp;S9), 4A, S2, S6, and S8&nbsp;of the manuscript in the title.&nbsp;</p> <p><strong>Method details</strong></p> <p>1. RNA fluorescence in situ hybridization (FISH)</p> <p>The genome-edited A673 cells (described in https://www.science.org/doi/10.1126/science.aar2555)&nbsp;were plated on 18 mm circular No. 1 cover glasses (VWR VistaVision, 16004-300) and transfected with a protein expression plasmid using Lipofectamine 3000. 24 hours after transfection, we stained the cells with 200 nM JFX549 HaloTag ligand following the protocol described above, fixed the cells, and then proceeded with RNA FISH. To measure nascent transcription levels of&nbsp;<em>ABHD6</em>,&nbsp;<em>CAV1</em>, and&nbsp;<em>GAPDH&nbsp;</em>genes, we performed intron RNA FISH following the published Stellaris RNA FISH protocol for adherent cells (https://biosearchassets.blob.core.windows.net/assets/bti_stellaris_protocol_adherent_cell.pdf) using Quasar 670-labeled FISH probes designed with the online software Stellaris Probe Designer (https://www.biosearchtech.com/support/tools/design-software/stellaris-probe-designer) and purchased from LGC Biosearch Technologies.&nbsp;</p> <p>2. Confocal fluorescence imaging of protein and nucleic acid distribution</p> <p>Two confocal microscopes were used to image intron RNA FISH samples. One is an inverted laser scanning confocal microscope (Zeiss, LSM 710 AxioObserver) equipped with 34-channel spectral detection, a motorized stage, a full incubation chamber maintaining 37&deg;C and 5% CO<sub>2</sub>, a heated stage, an X-Cite 120 illumination source as well as several laser lines (405, 458, 488, 514, 561, 591, 633 nm). Images were acquired with a 40x Plan NeoFluar NA1.3 oil-immersion objective under control of the Zeiss Zen software. The other is&nbsp;an inverted laser scanning confocal microscope with Airyscan super-resolution capability (Zeiss, LSM 900 with Airyscan 2) and equipped with four laser lines (405, 488, 561, 640 nm). Images were acquired with a 40x oil objective (Zeiss Plan-Apochromat 40x/1.3 Oil DIC) in the confocal (CO) mode under control of the Zen software. We acquired z stacks of RNA FISH samples with a slice interval of 0.3&nbsp;mm. 405 nm, 488 nm, 561 nm, and 633 or 640 nm lasers were used to excite the fluorescence of Hoechst-labeled nuclei, EGFP or mNeonGreen-labeled proteins, JFX549-labeled EWS::FLI1-Halo, and&nbsp;Quasar 670-labeled intron RNA FISH, respectively. Before acquiring any fluorescence image, we carefully set the laser intensity and microscope detectors to make sure that no pixel in the image was saturated. We used proper emission filters for sequential four-color imaging and ensured no bleed-through between the four channels by imaging cell samples that contain only one of the four fluorophores (Hoechst, EGFP or mNeonGreen, JFX549, and&nbsp;Quasar 670) under the four-color imaging settings.</p> <p>3. Fluorescence recovery after photobleaching (FRAP)</p> <p>FRAP was performed on the inverted laser scanning confocal microscope (Zeiss, LSM 710 AxioObserver) described above. The 561 nm laser and the epi-illumination mode were used for FRAP measurements. Images were acquired with a 40x Plan NeoFluar NA1.3 oil-immersion objective. The knock-in A673 cells were grown on glass-bottom (No. 1.5, 14 mm diameter) 35 mm dishes (MatTek, P35G-1.5-14-C). To measure the FRAP dynamics of EWS::FLI1-Halo in the nucleolus, we transfected the knock-in cells with a plasmid encoding mNG-EWS-NPM1 and stained the cells with 500 nM HaloTag TMR ligand (Promega, G8251) following the protocol described above. We acquired 1000 frames at one frame per 0.3 seconds with the first 5 frames acquired before the bleach pulse for the measurement of baseline fluorescence of the bleach spot and the whole nucleus. We chose to photobleach a circular spot with a radius of 1 &mu;m within a nucleolus using the 561 nm laser at maximum intensity. To measure the FRAP dynamics of EWS::FLI1-Halo in the nucleoplasm, we followed the same procedure as above, except that the knock-in cells were not transfected and a circular bleach spot with a radius of 1 &mu;m was chosen within the nucleoplasm of a cell and at least 1 &mu;m from nuclear and nucleolar boundaries.&nbsp;</p>

opencc-by-4.0Dec 2021View details →
zenodo32/100

FRAP Dataset 2023

<p>Bokeh Visualisation, for publication review</p>

opencc-by-4.0Aug 2023View details →
dryad28/100

Data from: In vivo dynamics of skeletal muscle Dystrophin in zebrafish embryos revealed by improved FRAP analysis

Dystrophin forms an essential link between sarcolemma and cytoskeleton, perturbation of which causes muscular dystrophy. We analysed Dystrophin binding dynamics in vivo for the first time. Within maturing fibres of host zebrafish embryos, our analysis reveals a pool of diffusible Dystrophin and complexes bound at the fibre membrane. Combining modelling, an improved FRAP methodology and direct semi-quantitative analysis of bleaching suggests the existence of two membrane-bound Dystrophin populations with widely differing bound lifetimes: a stable, tightly bound pool, and a dynamic bound pool with high turnover rate that exchanges with the cytoplasmic pool. The three populations were found consistently in human and zebrafish Dystrophins overexpressed in wild-type or dmdta222a/ta222a zebrafish embryos, which lack Dystrophin, and in Gt(dmd-Citrine)ct90a that express endogenously-driven tagged zebrafish Dystrophin. These results lead to a new model for Dystrophin membrane association in developing muscle, and highlight our methodology as a valuable strategy for in vivo analysis of complex protein dynamics.

opencc-zeroDec 2014View details →
zenodo28/100

FRAP dataset associated with manuscript (https://doi.org/10.1101/2023.08.08.552291 )

Open the record for dataset details and reuse information.

opencc-by-4.0Mar 2024View details →
zenodo28/100

FRAP Data Greiner et al 2023

<p>Bokeh Visualisation</p>

opencc-by-4.0Aug 2023View details →
ClinicalTrials.gov28/100

FRailty WAlking Patterns (FRAP) Study

ClinicalTrials.gov study NCT02755129. IPD Sharing: NO. Countries: 1. Publications: 0.

closedIPD-NOFeb 2026View details →
dryad28/100

Data from: In vivo dynamics of skeletal muscle Dystrophin in zebrafish embryos revealed by improved FRAP analysis

Open the record for dataset details and reuse information.

publicOct 2016View details →
ClinicalTrials.gov24/100

Leptin, Adiponectin, FRAP and Tac in Patients With Early Childhood Caries

ClinicalTrials.gov study NCT05352841. IPD Sharing: NO. Countries: 1. Publications: 0.

closedIPD-NOFeb 2026View details →

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