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7 results for “copolymer micelles”

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zenodo32/100

Synthesis and Complex Self-Assembly of Amphiphilic Block Copolymers with a Branched Hydrophobic Poly(2-oxazoline) into Multicompartment Micelles, Pseudovesicles and Yolk/Shell Nanoparticles

<p>Data underlying the figures in the publication &ldquo;Synthesis and complex self-assembly of amphiphilic block copolymers with a branched hydrophobic poly(2-oxazoline) into multicompartment micelles, pseudovesicles and yolk/shell nanoparticles&rdquo;, published in <em>Polym. Chem.</em>, <strong>2020</strong>, 11, 1237&ndash;1248. <a href="https://pubs.rsc.org/en/content/articlepdf/2020/py/c9py01559k">https://pubs.rsc.org/en/content/articlepdf/2020/py/c9py01559k</a></p> <p>Table of contents:</p> <p><strong>1. Figure 2_Kinetics</strong>; Origin file with the data for <em>Figure 2</em>, presenting the kinetics of polymerization of EHOx on PEO-Nos in Chlorobenzene and Acetonitrile. &nbsp;</p> <p><strong>2. Figure 3_GPC Trace</strong>; Origin file with the data for the GPC traces in <em>Figure 3</em>. It contains the exportation of the raw data from our GPC instrument, processing of the data (normalization) and the final illustration as a graphic. &nbsp;</p> <p><strong>3. Figure 4_DSC</strong>; Origin file with the data for <em>Figure 4.</em> It contains the exportation of all the DSC curves measured by our DSC and the final curves/graphic used.</p> <p><strong>4. Figure 5</strong>; Zip file containing all the different Cryo-TEM and TEM images used for <em>Figure 5 </em>with a precise label, please refer to Table 1 for the name of the polymers.</p> <p><strong>5. Figure 7_Self-assembly</strong>; Origin file with the data for <em>Figure 7</em>. It contains all the data from the deblocks used in this publication and gathered it in the corresponding graph. Labels were added later by Powerpoint.</p> <p><strong>6. Table 1</strong>; Excel file that contains all the various information about the different polymers used in this publication that were obtained by NMR, GPC. (Cf Materials and Methods)</p> <p><strong>7. Table 2</strong>; Excel file that contains all the various information about DLS/SLS of the various self-assemblies by film rehydration and solvent switch.</p> <p><strong>8. SI Dataset</strong>; Zip file that contains all the various TEM and Cryo-TEM images in jpg/tif and in higher resolution, the extra DSC diblocks curves as well as the calculation of dn/dc used in the Supplementary Information.</p> <p>&nbsp;</p>

opencc-by-4.0Jul 2021View details →
zenodo28/100

Figure 3 from: Aluani D, Kondeva-Burdina M, Tosheva A, Yoncheva K, Tzankova V (2022) Improvement of in vitro antioxidant activity of kaempferol by encapsulation in copolymer micelles. Pharmacia 69(1): 25-29. https://doi.org/10.3897/pharmacia.69.e77678

Figure 3 Effect of empty PDMAEMA-PPO-PDMAEMA (PPO) and kaempferol (KF) loaded PDMAEMA-PPO-PDMAEMA (PPO-KF) micelles (25, 50, 75 μg/ml) on the level of malondialdehyde (MDA) in non-treated rat microsomes.

opencc-by-4.0Jan 2022View details →
zenodo28/100

Figure 5 from: Aluani D, Kondeva-Burdina M, Tosheva A, Yoncheva K, Tzankova V (2022) Improvement of in vitro antioxidant activity of kaempferol by encapsulation in copolymer micelles. Pharmacia 69(1): 25-29. https://doi.org/10.3897/pharmacia.69.e77678

Figure 5 Protective effects of free kaempferol (KF) (25, 50, 75 μg/ml) and kaempferol loaded PDMAEMA-PPO-PDMAEMA (PPO-KF) micelles on the level of malondialdehyde (MDA) in iron/ascorbic acid (Fe2+/AA) treated microsomes. Mean values ± SN (n = 6). *** p &lt; 0.001 compared to untreated control group; +++ &lt; 0.001 vs Fe2+/AA is considered to be statistically significant.

opencc-by-4.0Jan 2022View details →
zenodo28/100

Figure 2 from: Aluani D, Kondeva-Burdina M, Tosheva A, Yoncheva K, Tzankova V (2022) Improvement of in vitro antioxidant activity of kaempferol by encapsulation in copolymer micelles. Pharmacia 69(1): 25-29. https://doi.org/10.3897/pharmacia.69.e77678

Figure 2 Effect of empty PDMAEMA-PCL-PDMAEMA (PCL) and kaempferol (KF) loaded PDMAEMA-PCL-PDMAEMA (KF-PCL) micelles (25, 50, 75 μg/ml) on the level of malondialdehyde (MDA) in non-treated rat microsomes.

opencc-by-4.0Jan 2022View details →
zenodo28/100

Figure 1 from: Aluani D, Kondeva-Burdina M, Tosheva A, Yoncheva K, Tzankova V (2022) Improvement of in vitro antioxidant activity of kaempferol by encapsulation in copolymer micelles. Pharmacia 69(1): 25-29. https://doi.org/10.3897/pharmacia.69.e77678

Figure 1 Mean diameter of both types of kaempferol loaded micelles – PDMAEMA-PCL-PDMAEMA (KF-PCL) and PDMAEMA-PPO-PDMAEMA (KF-PPO).

opencc-by-4.0Jan 2022View details →
zenodo28/100

Figure 4 from: Aluani D, Kondeva-Burdina M, Tosheva A, Yoncheva K, Tzankova V (2022) Improvement of in vitro antioxidant activity of kaempferol by encapsulation in copolymer micelles. Pharmacia 69(1): 25-29. https://doi.org/10.3897/pharmacia.69.e77678

Figure 4 Protective effects of free kaempferol (KF) (25, 50, 75 μg/ml) and kaempferol loaded PDMAEMA-PCL-PDMAEMA (KF-PCL) micelles on the level of malondialdehyde (MDA) in iron/ascorbic acid (Fe2+/AA) treated microsomes.

opencc-by-4.0Jan 2022View details →
zenodo28/100

Block copolymer micelles as colloidal catalysts for photocatalytic NAD+ reduction

Open the record for dataset details and reuse information.

opencc-by-4.0Jun 2024View details →

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