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1.
Chemphyschem ; 18(7): 785-795, 2017 Apr 05.
Artículo en Inglés | MEDLINE | ID: mdl-28128514

RESUMEN

The structural basis for the interaction of roscovitine and analogues containing 13 different bioisosteric central heterocycles with the enzyme cyclin-dependent kinase 2 (CDK2) is elucidated. Although all the central scaffolds are very similar to the purine core of roscovitine, the experimentally determined IC50 values of the inhibitors span three orders of magnitude. By using an extensive computational chemistry approach, the affinities of the inhibitors to CDK2 are determined as calculated binding scores of complexes of the inhibitors with the protein. The interactions of the inhibitors with CDK2 are computationally described by using a hybrid quantum mechanics/semi-empirical quantum mechanics method (QM/SQM), which combines the DFT-D method for the QM part and the PM6-D3H4X method for the SQM part. The solvent effect is described by the COSMO implicit solvation model at the SQM level for the whole system. The contributions of the scaffolds and the individual substituents, quantified and evaluated in relation to conformations of optimized protein-inhibitor complexes, are found not to be simply additive. The inhibitory activity of the selected candidates, including two newly prepared compounds, is tested against CDK2. The results of the calculations are in close agreement with the experimental data.


Asunto(s)
Quinasa 2 Dependiente de la Ciclina/química , Compuestos Heterocíclicos/química , Inhibidores de Proteínas Quinasas/química , Purinas/química , Teoría Cuántica , Cristalografía por Rayos X , Quinasa 2 Dependiente de la Ciclina/antagonistas & inhibidores , Compuestos Heterocíclicos/farmacología , Modelos Moleculares , Estructura Molecular , Inhibidores de Proteínas Quinasas/farmacología , Purinas/farmacología , Roscovitina , Electricidad Estática , Termodinámica
2.
J Am Chem Soc ; 137(15): 4988-92, 2015 Apr 22.
Artículo en Inglés | MEDLINE | ID: mdl-25815779

RESUMEN

Hydration of proteins profoundly affects their functions. We describe a simple and general method for site-specific analysis of protein hydration based on the in vivo incorporation of fluorescent unnatural amino acids and their analysis by steady-state fluorescence spectroscopy. Using this method, we investigate the hydration of functionally important regions of dehalogenases. The experimental results are compared to findings from molecular dynamics simulations.


Asunto(s)
Aminoácidos/química , Fluorescencia , Proteínas/química , Agua/análisis , Simulación de Dinámica Molecular , Estructura Molecular , Agua/química
3.
J Phys Chem B ; 117(26): 7898-906, 2013 Jul 03.
Artículo en Inglés | MEDLINE | ID: mdl-23781851

RESUMEN

Time-dependent fluorescence shifts (TDFS) of chromophores selectively attached to proteins may give information on the dynamics of the probed protein moieties and their degree of hydration. Previously, we demonstrated that a coumarin dye selectively labeling the tunnel mouth of different haloalkane dehalogenases (HLDs) can distinguish between different widths of tunnel mouth openings. In order to generalize those findings analogous experiments were performed using a different chromophore probing the same region of these enzymes. To this end we synthesized and characterized three new fluorescent probes derived from dimethylaminonaphthalene bearing a linker almost identical to that of the coumarin dye used in our previous study. Labeling efficiencies, acrylamide quenching, fluorescence anisotropies, and TDFS for the examined fluorescent substrates confirm the picture gained from the coumarin studies: the different tunnel mouth opening, predicted by crystal structures, is reflected in the hydration and tunnel mouth dynamics of the investigated HLDs. Comparison of the TDFS reported by the coumarin dye with those obtained with the new dimethylaminonaphthalene dyes shows that the choice of chromophore may strongly influence the recorded TDFS characteristics. The intrinsic design of our labeling strategy and the variation of the linker length ensure that both dyes probe the identical enzyme region; moreover, the covalently fixed position of the chromophore does not allow for a major relocalization within the HLD structures. Our study shows, for the first time, that TDFS may strongly depend on the choice of the chromophore, even though the identical region of a protein is explored.


Asunto(s)
Bradyrhizobium/enzimología , Cumarinas/química , Colorantes Fluorescentes/química , Hidrolasas/química , Naftalenos/química , Rhodococcus/enzimología , Fluorescencia , Polarización de Fluorescencia
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