dc.creatorVallejo, Diego
dc.creatorZamarreño, Fernando
dc.creatorGuérin, Diego M.A.
dc.creatorGrigera, José Raúl
dc.creatorCostabel, Marcelo D.
dc.date2009
dc.date2019-10-04T11:55:57Z
dc.identifierhttp://sedici.unlp.edu.ar/handle/10915/82670
dc.identifierissn:0005-2736
dc.descriptionAcyl-CoA binding proteins (ACBPs) are highly conserved 10 kDa cytosolic proteins that bind medium- and long-chain acyl-CoA esters. They act as intracellular carriers of acyl-CoA and play a role in acyl-CoA metabolism, gene regulation, acyl-CoA-mediated cell signaling, transport-mediated lipid synthesis, membrane trafficking and also, ACBPs were indicated as a possible inhibitor of diazepam binding to the GABA-A receptor. To estimate the importance of the non-specific electrostatic energy in the ACBP-membrane interaction, we computationally modeled the interaction of HgACBP with both anionic and neutral membranes. To compute the Free Electrostatic Energy of Binding (dE), we used the Finite Difference Poisson Boltzmann Equation (FDPB) method as implemented in APBS. In the most energetically favorable orientation, ACBP brings charged residues Lys18 and Lys50 and hydrophobic residues Met46 and Leu47 into membrane surface proximity. This conformation suggests that these four ACBP amino acids are most likely to play a leading role in the ACBP-membrane interaction and ligand intake. Thus, we propose that long range electrostatic forces are the first step in the interaction mechanism between ACBP and membranes.
dc.descriptionInstituto de Física de Líquidos y Sistemas Biológicos
dc.descriptionFacultad de Ingeniería
dc.descriptionFacultad de Ciencias Exactas
dc.formatapplication/pdf
dc.format696-700
dc.languageen
dc.rightshttp://creativecommons.org/licenses/by-nc-sa/4.0/
dc.rightsCreative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)
dc.subjectCiencias Astronómicas
dc.subjectACBP
dc.subjectHgACBP
dc.subjectProtein-membrane interaction
dc.titlePrediction of the most favorable configuration in the ACBP-membrane interaction based on electrostatic calculations
dc.typeArticulo
dc.typeArticulo


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