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Inhibition of acetylcholinesterase by two genistein derivatives: kinetic analysis,molecular docking and molecular dynamics simulation
Authors:Jiansong Fang  Ping Wu  Ranyao Yang  Li Gao  Chao Li  Dongmei Wang  Song Wu  Ai-Lin Liu  Guan-Hua Du
Institution:aInstitute of Materia Medica, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100050, China;bBeijing Key Laboratory of Drug Target Research and Drug Screening, Beijing 100050, China;cState Key Laboratory of Bioactive Substance and Function of Natural Medicines, Beijing 100050, China
Abstract:In this study two genistein derivatives (G1 and G2) are reported as inhibitors of acetylcholinesterase (AChE) and butyrylcholinesterase (BuChE), and differences in the inhibition of AChE are described. Although they differ in structure by a single methyl group, the inhibitory effect of G1 (IC50=264 nmol/L) on AChE was 80 times stronger than that of G2 (IC50=21,210 nmol/L). Enzyme-kinetic analysis, molecular docking and molecular dynamics (MD) simulations were conducted to better understand the molecular basis for this difference. The results obtained by kinetic analysis demonstrated that G1 can interact with both the catalytic active site and peripheral anionic site of AChE. The predicted binding free energies of two complexes calculated by the molecular mechanics/generalized born surface area (MM/GBSA) method were consistent with the experimental data. The analysis of the individual energy terms suggested that a difference between the net electrostatic contributions (ΔEeleGGB) was responsible for the binding affinities of these two inhibitors. Additionally, analysis of the molecular mechanics and MM/GBSA free energy decomposition revealed that the difference between G1 and G2 originated from interactions with Tyr124, Glu292, Val294 and Phe338 of AChE. In conclusion, the results reveal significant differences at the molecular level in the mechanism of inhibition of AChE by these structurally related compounds.KEY WORDS: Genistein derivatives, Acetylcholinesterase (AChE), Kinetics analysis, Molecular docking, Molecular dynamics simulation, MM/GBSAAbbreviations: ACh, acetylcholine; AChEIs, acetylcholinesterase inhibitors; AChE, acetylcholinesterase; AD, Alzheimer׳s disease; BuChE, butyrylcholinesterase; BuSCh, S-butyrylthiocholine chloride; CAS, catalytic active site; DTNB, 5,5′-dithiobis-(2-nitrobenzoic acid); GAFF, generalized AMBER force field; G1, 3-(4-methoxyphenyl)-7-(2-(piperidin-1-yl)ethoxy)-4H-chromen-4-one; G2, (S)-3-(4-methoxyphenyl)-7-(2-(2-methylpiperidin-1-yl)ethoxy)-4H-chromen-4-one; iso-OMPA, tetraisopropyl pyrophosphoramide; MD, molecular dynamics; MM/GBSA, molecular mechanics/generalized born surface area; PAS, peripheral anionic site; PDB, protein data bank; PME, particle mesh Ewald; RMSD, root-mean-square deviation; S-ACh, acetylthiocholine iodide; ΔEele, electrostatic energy contribution; ΔEMM, gas-phase interaction energy between receptor and ligand; ΔEvdw, van der Waals energy contribution; SASA, solvent accessible surface area; ΔGexp, experimental binding free energy; ΔGGB, polar desolvation energy term; ΔGpred, total binding free energy; ΔGSA, nonpolar desolvation energy term; ΔS, conformational entropy contribution
Keywords:Genistein derivatives  Acetylcholinesterase (AChE)  Kinetics analysis  Molecular docking  Molecular dynamics simulation  MM/GBSA  ACh"}  {"#name":"keyword"  "$":{"id":"key0010"}  "$$":[{"#name":"text"  "_":"acetylcholine  AChEIs"}  {"#name":"keyword"  "$":{"id":"key0020"}  "$$":[{"#name":"text"  "_":"acetylcholinesterase inhibitors  AChE"}  {"#name":"keyword"  "$":{"id":"key0030"}  "$$":[{"#name":"text"  "_":"acetylcholinesterase  AD"}  {"#name":"keyword"  "$":{"id":"key0040"}  "$$":[{"#name":"text"  "_":"Alzheimer׳s disease  BuChE"}  {"#name":"keyword"  "$":{"id":"key0050"}  "$$":[{"#name":"text"  "_":"butyrylcholinesterase  BuSCh"}  {"#name":"keyword"  "$":{"id":"key0060"}  "$$":[{"#name":"text"  "$$":[{"#name":"italic"  "_":"S"}  {"#name":"__text__"  "_":"-butyrylthiocholine chloride  CAS"}  {"#name":"keyword"  "$":{"id":"key0070"}  "$$":[{"#name":"text"  "_":"catalytic active site  DTNB"}  {"#name":"keyword"  "$":{"id":"key0080"}  "$$":[{"#name":"text"  "_":"5  5′-dithiobis-(2-nitrobenzoic acid)  GAFF"}  {"#name":"keyword"  "$":{"id":"key0090"}  "$$":[{"#name":"text"  "_":"generalized AMBER force field  G1"}  {"#name":"keyword"  "$":{"id":"key0100"}  "$$":[{"#name":"text"  "$$":[{"#name":"__text__"  "_":"3-(4-methoxyphenyl)-7-(2-(piperidin-1-yl)ethoxy)-4"}  {"#name":"italic"  "_":"H"}  {"#name":"__text__"  "_":"-chromen-4-one  G2"}  {"#name":"keyword"  "$":{"id":"key0110"}  "$$":[{"#name":"text"  "$$":[{"#name":"__text__"  "_":"("}  {"#name":"italic"  "_":"S"}  {"#name":"__text__"  "_":")-3-(4-methoxyphenyl)-7-(2-(2-methylpiperidin-1-yl)ethoxy)-4"}  {"#name":"italic"  "_":"H"}  {"#name":"__text__"  "_":"-chromen-4-one  iso-OMPA"}  {"#name":"keyword"  "$":{"id":"key0120"}  "$$":[{"#name":"text"  "_":"tetraisopropyl pyrophosphoramide  MD"}  {"#name":"keyword"  "$":{"id":"key0130"}  "$$":[{"#name":"text"  "_":"molecular dynamics  MM/GBSA"}  {"#name":"keyword"  "$":{"id":"key0140"}  "$$":[{"#name":"text"  "_":"molecular mechanics/generalized born surface area  PAS"}  {"#name":"keyword"  "$":{"id":"key0150"}  "$$":[{"#name":"text"  "_":"peripheral anionic site  PDB"}  {"#name":"keyword"  "$":{"id":"key0160"}  "$$":[{"#name":"text"  "_":"protein data bank  PME"}  {"#name":"keyword"  "$":{"id":"key0170"}  "$$":[{"#name":"text"  "_":"particle mesh Ewald  RMSD"}  {"#name":"keyword"  "$":{"id":"key0180"}  "$$":[{"#name":"text"  "_":"root-mean-square deviation  acetylthiocholine iodide  electrostatic energy contribution  gas-phase interaction energy between receptor and ligand  van der Waals energy contribution  SASA"}  {"#name":"keyword"  "$":{"id":"key0230"}  "$$":[{"#name":"text"  "_":"solvent accessible surface area  experimental binding free energy  polar desolvation energy term  total binding free energy  nonpolar desolvation energy term  conformational entropy contribution
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