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The reaction mechanism for the modification was revealed to be the BM/MAA coordination and MAA/rubber grafting reaction.
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Ablation, protrusions or surface modification is revealed to occur by argon ion laser scanning into silicon.
This modification is revealed by changes in the dispersive parameters and variations in the relative temperature gradients.
Leaf structure modifications were revealed by low field NMR and light microscopy.
Post-translational modification (phosphorylation) was revealed by protein mass spectrometry and correlated with the loss of enzyme activity, suggesting a possible regulatory mechanism.
Proteins were resolved by SDS-PAGE and modification by AMP-FAM was revealed by fluorescence using green channel (excitation: 488 nm, emission: 526 nm) on a Chemidoc XR+Imaging System using ImageLab (BioRad).
Thicker modifier layer was formed on the TiO2 surface but lower average particle size was attained when amphiphilic modification was applied that was revealed by TEM analysis and dynamic light scattering, correspondingly.
Under these conditions, caspase activation was strongly suppressed but no significant modification of the JNK activation was revealed by anti-MMP1 staining or by detecting dilp8 expression.
It was revealed that coexisting modification of polymer matrix with Mg and TCP resulted in formation of apatites with magnesium substitutions that have superior biological properties.
It was revealed that the modifications can affect the dominating erosion mechanisms and newly designed profiles can reduce the erosion rate in different parts of the geometry significantly.
I V curves of before and after the chemical modification nanopores are revealed in Fig. 2d.
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