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This was done with the intention to investigate the solvatochromic behavior of this compound.
Crystallization behavior of this compound from solutions and during heating is also studied.
The photochemical behavior of this compound was studied with a view to obtaining polymeric networks.
The magnetic behavior of this compound can be explained as the result of an intramolecular magnetic exchange (long distance), and a superexchange path through the hydrogen bond network between adjacent dinuclear molecules.
As to compare with Nutlin 3a, NVP-CGM097 and NVP-CFC218 show differences in binding mode within the p53 binding site of HDM2 (Jeay et al., 2014; Valat et al., 2014, manuscript in preparation), which allows better in vitro and in vivo on-target potency, more favorable drug-like properties, and improved in vivo behavior of this compound family (Ferretti et al., 2014; Jeay et al., 2014).
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In this investigation, the cavitation erosion behavior of the compound and of the diffusion layer of ion-nitrided 34 CrAlNi 7 steel was studied.
Magnetic measurements at variable temperature show an overall antiferromagnetic behavior of the compound.
Obviously, the type and stoichiometry of the hard coating influence the fatigue behavior of the compound.
Thus, the study of events occurring under extreme conditions is important for understanding the behavior of the compound system.
Electrochemical behavior of the compound (1) was also studied by cyclic voltammetry (CV) in sodium acetate buffer solution.
Other parameters, including the polarity of the compound can help to predict the partitioning into the membrane and the behavior of the compound.
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