Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands

Fatty acid-binding proteins (FABPs) belong to a family of proteins that transports fatty acids in the cytosol and regulates cellular functions like membrane phospholipid synthesis, lipid metabolism, and mitochondrial β oxidation. In this study, we synthesized ten novel derivatives from BMS309403, a...

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Main Authors: Yasuharu Shinoda, Yifei Wang, Tetsunori Yamamoto, Hiroyuki Miyachi, Kohji Fukunaga
Format: Article
Language:English
Published: Elsevier 2020-08-01
Series:Journal of Pharmacological Sciences
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1347861320300499
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spelling doaj-ee50e216b51d44ca88804ff921a09e022020-11-25T03:10:48ZengElsevierJournal of Pharmacological Sciences1347-86132020-08-011434264271Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligandsYasuharu Shinoda0Yifei Wang1Tetsunori Yamamoto2Hiroyuki Miyachi3Kohji Fukunaga4Department of Pharmacology, Graduate School of Pharmaceutical Sciences, Tohoku University, JapanDepartment of Pharmacology, Graduate School of Pharmaceutical Sciences, Tohoku University, JapanDepartment of Pharmacology, Graduate School of Pharmaceutical Sciences, Tohoku University, JapanLead Exploration Unit, Drug Discovery Initiative, The University of Tokyo, JapanDepartment of Pharmacology, Graduate School of Pharmaceutical Sciences, Tohoku University, Japan; Corresponding author. 6-3 Aramaki-Aoba, Aoba-ku, Sendai, 980-8578, Japan. Fax: +81 22 795 6835.Fatty acid-binding proteins (FABPs) belong to a family of proteins that transports fatty acids in the cytosol and regulates cellular functions like membrane phospholipid synthesis, lipid metabolism, and mitochondrial β oxidation. In this study, we synthesized ten novel derivatives from BMS309403, a biphenyl azole compound specific for FABP4, and analyzed their affinity and specificity for FABP3, FABP4, and FABP5, which possess 60% of homology in amino acid sequence. Here, we used 1-anilinonaphthalene 8-sulfonic acid (ANS) displacement assay and found that Ligand 1 has highest affinity for FABP3, with comparable affinity for FABP4 and FABP5. The apparent dissociation constant of BMS309403 was identical to that of arachidonic acid and docosahexaenoic acid. Docking studies with X-ray structural data showed that these novel derivatives obtained by the substitution of phenoxyacetic acid in BMS309403 but not BMS309403 have high or moderate affinity for FABP3. We further found that substitution of a phenyl group and alkyl group caused steric hindrance between 16F, the portal loop and 115L, 117L, respectively, leading to decrease in their affinity for FABPs. In conclusion, our study provides a novel strategy for development of specific ligand for each FABP.http://www.sciencedirect.com/science/article/pii/S1347861320300499Fatty acid-binding proteinBMS309403 derivativesANS displacement AssayLigand dockingProtein-ligand interaction
collection DOAJ
language English
format Article
sources DOAJ
author Yasuharu Shinoda
Yifei Wang
Tetsunori Yamamoto
Hiroyuki Miyachi
Kohji Fukunaga
spellingShingle Yasuharu Shinoda
Yifei Wang
Tetsunori Yamamoto
Hiroyuki Miyachi
Kohji Fukunaga
Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
Journal of Pharmacological Sciences
Fatty acid-binding protein
BMS309403 derivatives
ANS displacement Assay
Ligand docking
Protein-ligand interaction
author_facet Yasuharu Shinoda
Yifei Wang
Tetsunori Yamamoto
Hiroyuki Miyachi
Kohji Fukunaga
author_sort Yasuharu Shinoda
title Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
title_short Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
title_full Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
title_fullStr Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
title_full_unstemmed Analysis of binding affinity and docking of novel fatty acid-binding protein (FABP) ligands
title_sort analysis of binding affinity and docking of novel fatty acid-binding protein (fabp) ligands
publisher Elsevier
series Journal of Pharmacological Sciences
issn 1347-8613
publishDate 2020-08-01
description Fatty acid-binding proteins (FABPs) belong to a family of proteins that transports fatty acids in the cytosol and regulates cellular functions like membrane phospholipid synthesis, lipid metabolism, and mitochondrial β oxidation. In this study, we synthesized ten novel derivatives from BMS309403, a biphenyl azole compound specific for FABP4, and analyzed their affinity and specificity for FABP3, FABP4, and FABP5, which possess 60% of homology in amino acid sequence. Here, we used 1-anilinonaphthalene 8-sulfonic acid (ANS) displacement assay and found that Ligand 1 has highest affinity for FABP3, with comparable affinity for FABP4 and FABP5. The apparent dissociation constant of BMS309403 was identical to that of arachidonic acid and docosahexaenoic acid. Docking studies with X-ray structural data showed that these novel derivatives obtained by the substitution of phenoxyacetic acid in BMS309403 but not BMS309403 have high or moderate affinity for FABP3. We further found that substitution of a phenyl group and alkyl group caused steric hindrance between 16F, the portal loop and 115L, 117L, respectively, leading to decrease in their affinity for FABPs. In conclusion, our study provides a novel strategy for development of specific ligand for each FABP.
topic Fatty acid-binding protein
BMS309403 derivatives
ANS displacement Assay
Ligand docking
Protein-ligand interaction
url http://www.sciencedirect.com/science/article/pii/S1347861320300499
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