Molecular modeling studies on the active binding site of the blood–brain barrier choline transporter

Bioorganic & Medicinal Chemistry Letters
2004.0

Abstract

The blood-brain barrier choline transporter may have utility as a drug delivery vector to the central nervous system. Surprisingly, this transporter has as yet not been cloned and expressed. We therefore initiated a 3D-QSAR study to develop predictive models for compound binding and identify structural features important for binding to this transporter. In vivo experimental data were obtained from in situ rat brain perfusion studies. Comparative molecular field analysis (CoMFA) and comparative molecular similarity index analysis (CoMSIA) methods were used to build the models. The best cross-validated CoMFA q(2) was found to be 0.47 and the non-cross-validated r(2) was 0.95. CoMSIA hydrophobic cross-validated q(2) was 0.37 and the non-cross-validated r(2) was 0.85. These models rendered a useful approximation for binding requirements in the BBB-choline transporter and, until such time as the cloned transporter becomes available, may have significant utility in developing a predictive model for the rational design of drugs targeted to the brain.

Knowledge Graph

Similar Paper

Molecular modeling studies on the active binding site of the blood–brain barrier choline transporter
Bioorganic & Medicinal Chemistry Letters 2004.0
3-D-QSAR and docking studies on the neuronal choline transporter
Bioorganic & Medicinal Chemistry Letters 2010.0
3D-QSAR study of 8-azabicyclo[3.2.1] octane analogs antagonists of cholinergic receptor
Bioorganic & Medicinal Chemistry Letters 2009.0
Bis-azaaromatic quaternary ammonium salts as ligands for the blood–brain barrier choline transporter
Bioorganic & Medicinal Chemistry Letters 2010.0
3D QSAR Analyses-Guided Rational Design of Novel Ligands for the (α4)<sub>2</sub>(β2)<sub>3</sub> Nicotinic Acetylcholine Receptor
Journal of Medicinal Chemistry 2003.0
Three-Dimensional Quantitative Structure−Activity Relationship Analyses of Peptide Substrates of the Mammalian H<sup>+</sup>/Peptide Cotransporter PEPT1
Journal of Medicinal Chemistry 2003.0
A highly predictive 3D-QSAR model for binding to the voltage-gated sodium channel: Design of potent new ligands
Bioorganic &amp; Medicinal Chemistry 2014.0
Structural Requirements for the Substrates of the H<sup>+</sup>/Peptide Cotransporter PEPT2 Determined by Three-Dimensional Quantitative Structure−Activity Relationship Analysis
Journal of Medicinal Chemistry 2006.0
CoMFA and CoMSIA analysis of ACE-inhibitory, antimicrobial and bitter-tasting peptides
European Journal of Medicinal Chemistry 2014.0
Structure-Based Alignment and Comparative Molecular Field Analysis of Acetylcholinesterase Inhibitors
Journal of Medicinal Chemistry 1996.0