frap assay data analysis (GraphPad Software Inc)
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Frap Assay Data Analysis, supplied by GraphPad Software Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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1) Product Images from "Characterization of Adenomatous Polyposis Coli Protein Dynamics and Localization at the Centrosome"
Article Title: Characterization of Adenomatous Polyposis Coli Protein Dynamics and Localization at the Centrosome
Journal: Cancers
doi: 10.3390/cancers8050047
Figure Legend Snippet: APC full-length and mutant dynamics at the centrosome are slowed by nocodazole treatment. ( A ) pAPC-FL-GFP and pAPC1-1309-GFP ( green ) were each co-transfected with pRFP-PCNT-C241 (red) into HeLa cells. APC-GFP was analysed for dynamic recruitment at the centrosome by FRAP in the presence and absence of 33 µM nocodazole. The effect of γ-tubulin on APC dynamics was also tested where FRAP was performed after depletion with γ-tubulin siRNA. ( B ) Fluorescence recovery curves were plotted as shown for APC-FL, indicating relative rates of recovery and equilibration (plateau) at the centrosome for up to 100 s after bleaching. The presence of nocodazole ( black dashed line ) significantly reduced the rate of recovery of APC-FL-GFP compared to that of untreated cells ( blue line ) ( n = 20–30). This was also indicated by comparison of T 1/2 values for the fast recovery pools (T = 0–40 s) ( p < 0.0001), and extrapolated retention levels, calculated from the recovery curve data using Graph Pad Prism software as above (see ). ( C ) The dynamic exchange profile of APC1-1309 at the centrosome +/− nocodazole ( black dotted line ) showed a small difference in the dynamic rate of recruitment compared to untreated cells ( p = 0.0447). There was a small but significant difference in T 1/2 value; however, no change in retention after nocodazole treatment. ( D ) Fluorescence recovery curves are shown for APC1-1309 for siCTRL ( red ) and γ-tubulin siRNA ( green ) transfected cells ( n = 9–10). Confirmation of γ-tubulin knockdown was by Western blot, and vinculin was used as loading control. Column graph shows the T 1/2 of the fluorescence recovery over 40 s, which was significantly increased after the knockdown of γ-tubulin ( p = 0.0194). No significant change in the maximum recovery (retention) was detected. (*, p < 0.05; ****, p < 0.0001).
Techniques Used: Mutagenesis, Transfection, Fluorescence, Comparison, Software, Knockdown, Western Blot, Control
Table S3 ). (G) Scheme showing 97 Hz and 2 Hz SPT workflow. Three-state model fits to 97 Hz SPT data using Spot-On was used to derive fractions and diffusion coefficients of fast diffusing ( F fast , D fast ), slow diffusing ( F slow , D slow ), and bound PARP ( F bound , D bound ) molecules. Further, 2 Hz SPT data were fit using a two-phase exponential model to derive fractions and duration of transient (Fraction transient, τ transient ) and stable (Fraction stable, τ stable ) PARP binding events. (H and I) Pie chart illustrations summarizing the derivation of overall fractions of Halo-PARP1 (in H) and Halo-PARP2 (in I) engaging in transient and stable binding, slow diffusion, and fast diffusion from 97 to 2 Hz SPT experiments. The bound, slow, and fast-diffusing fractions (in i) were determined using Spot-On’s three-state model fitting to 97 Hz SPT data. The bound fraction (in ii) in Halo-PARP1 and Halo-PARP2 cells was analyzed by 2 Hz SPT and fit to a two-phase exponential model. Data acquired for H2B-Halo were used for photobleaching correction, and a correction factor (see ) was applied to obtain the true fraction of transiently and stably binding Halo-PARP molecules (in iii). These data were compiled together to obtain the overall fractions of endogenous Halo-PARP1 and Halo-PARP2 molecules (in iv). (J) Normalized and photobleaching corrected recovery curves from