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Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase

Bisphosphonates (BPs) are the most widely used and effective treatment for osteoporosis and Paget's disease. Non-nitrogen containing BPs (non-N-BPs), namely etidronate, clodronate, tiludronate, as well as nitrogen-containing BPs (N-BPs), namely pamidronate, alendronate, ibandronate, risedronate...

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Autores principales: Ohno, K, Mori, K, Orita, M, Takeuchi, M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Bentham Science Publishers Ltd 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3343387/
https://www.ncbi.nlm.nih.gov/pubmed/21110804
http://dx.doi.org/10.2174/092986711794088335
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author Ohno, K
Mori, K
Orita, M
Takeuchi, M
author_facet Ohno, K
Mori, K
Orita, M
Takeuchi, M
author_sort Ohno, K
collection PubMed
description Bisphosphonates (BPs) are the most widely used and effective treatment for osteoporosis and Paget's disease. Non-nitrogen containing BPs (non-N-BPs), namely etidronate, clodronate, tiludronate, as well as nitrogen-containing BPs (N-BPs), namely pamidronate, alendronate, ibandronate, risedronate, zoledronate and minodronate have been launched on the market to date. N-BPs act by inhibiting the enzyme farnesyl pyrophosphate synthase (FPPS), and several crystal structures of complexes between FPPS and N-BPs have been revealed. Understanding the physical basis of the binding between protein and small molecules is an important goal in both medicinal chemistry and structural biology. In this review, we analyze in detail the energetic basis of molecular recognition between FPPS and N-BPs. First, we summarize the interactions between ligands and proteins observed in N-BPs-FPPS complexes in the Protein Data Bank (PDB). Second, we present an interaction energy analysis on the basis of full quantum mechanical calculation of FPPS and N-BP complexes using the fragment molecular orbital (FMO) method. The FMO result revealed that not only hydrogen bond and electrostatic interaction but also CH-O and π-π interaction with FPPS are important for N-BP’s potency. Third, we describe a binding site analysis of FPPS on the basis of the inhomogeneous solvation theory which, by clustering the results from an explicit solvent molecular dynamics simulation (MD), is capable of describing the entropic and enthalpic contributions to the free energies of individual hydration sites. Finally, we also discuss the structure-activity relationship (SAR) of the series of minodronate derivatives.
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spelling pubmed-33433872012-05-04 Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase Ohno, K Mori, K Orita, M Takeuchi, M Curr Med Chem Article Bisphosphonates (BPs) are the most widely used and effective treatment for osteoporosis and Paget's disease. Non-nitrogen containing BPs (non-N-BPs), namely etidronate, clodronate, tiludronate, as well as nitrogen-containing BPs (N-BPs), namely pamidronate, alendronate, ibandronate, risedronate, zoledronate and minodronate have been launched on the market to date. N-BPs act by inhibiting the enzyme farnesyl pyrophosphate synthase (FPPS), and several crystal structures of complexes between FPPS and N-BPs have been revealed. Understanding the physical basis of the binding between protein and small molecules is an important goal in both medicinal chemistry and structural biology. In this review, we analyze in detail the energetic basis of molecular recognition between FPPS and N-BPs. First, we summarize the interactions between ligands and proteins observed in N-BPs-FPPS complexes in the Protein Data Bank (PDB). Second, we present an interaction energy analysis on the basis of full quantum mechanical calculation of FPPS and N-BP complexes using the fragment molecular orbital (FMO) method. The FMO result revealed that not only hydrogen bond and electrostatic interaction but also CH-O and π-π interaction with FPPS are important for N-BP’s potency. Third, we describe a binding site analysis of FPPS on the basis of the inhomogeneous solvation theory which, by clustering the results from an explicit solvent molecular dynamics simulation (MD), is capable of describing the entropic and enthalpic contributions to the free energies of individual hydration sites. Finally, we also discuss the structure-activity relationship (SAR) of the series of minodronate derivatives. Bentham Science Publishers Ltd 2011-01 2011-01 /pmc/articles/PMC3343387/ /pubmed/21110804 http://dx.doi.org/10.2174/092986711794088335 Text en © 2011 Bentham Science Publishers Ltd http://creativecommons.org/licenses/by/2.5/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.5/), which permits unrestrictive use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Ohno, K
Mori, K
Orita, M
Takeuchi, M
Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title_full Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title_fullStr Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title_full_unstemmed Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title_short Computational Insights into Binding of Bisphosphates to Farnesyl Pyrophosphate Synthase
title_sort computational insights into binding of bisphosphates to farnesyl pyrophosphate synthase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3343387/
https://www.ncbi.nlm.nih.gov/pubmed/21110804
http://dx.doi.org/10.2174/092986711794088335
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