Location, orientation and dynamics of two molecules with mitochondrial activity dissolved in anionic lyomesophase. A 2H-NMR and MD study
Author
dc.contributor.author
Bahamonde-Padilla, Víctor
Author
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Martínez Cifuentes, Maximiliano
Author
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Muñoz-Masson, Daniel
Author
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Ruiz, Álvaro
Author
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Ahumada, Hernán
Author
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Araya Maturana, Ramiro
Author
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Soto Delgado, Jorge
Author
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Weiss López, Boris
Admission date
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2018-12-20T15:10:51Z
Available date
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2018-12-20T15:10:51Z
Publication date
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2012
Cita de ítem
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Journal of the Chilean Chemical Society, Volumen 57, Issue 3, 2012, Pages 1295-1300
Identifier
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07179707
Identifier
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07179324
Identifier
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10.4067/S0717-97072012000300021
Identifier
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https://repositorio.uchile.cl/handle/2250/158276
Abstract
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4,4-Dimethyl-5,8-dihydroanthracene-1,9,10(4H)-trione (Q1) and 9,10-Dihydroxy-4,4-dimethyl-5,8-dihydro-1 (4H)-anthracenone (Q2), two molecules that inhibit cancer cell respiration, were selectively deuterated and dissolved in an anionic discotic nematic lyotropic liquid crystal (dnllc) solution. The solution provides a magnetic field oriented anisotropic medium, where the location, average orientation and dynamics of Q(1) and Q(2) were examined by measuring H-2-NMR quadrupole splittings (Delta v(Q)) and H-2 longitudinal relaxation times (T-1). The NMR data shows that both molecules are strongly attached to the aggregate and, when dissolved, increase the alignment of the interface components with the magnetic field. However they present different average orientations. To assist with the interpretation of the experimental results, 300ns Molecular Dynamics (MD) trajectories of a bilayer model of the aggregate were calculated. The results show that both molecules spontaneously diffuse inside the bilayer, to locate in the limit between the hydrophobic core and the interface. The orientations of both molecules in the aggregate are determined by the formation of H-bonds with water.