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      Benzenesulfonamide derivatives as potent acetylcholinesterase, α-glycosidase, and glutathione S-transferase inhibitors: biological evaluation and molecular docking studies

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          A new and rapid colorimetric determination of acetylcholinesterase activity

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            Protein and ligand preparation: parameters, protocols, and influence on virtual screening enrichments.

            Structure-based virtual screening plays an important role in drug discovery and complements other screening approaches. In general, protein crystal structures are prepared prior to docking in order to add hydrogen atoms, optimize hydrogen bonds, remove atomic clashes, and perform other operations that are not part of the x-ray crystal structure refinement process. In addition, ligands must be prepared to create 3-dimensional geometries, assign proper bond orders, and generate accessible tautomer and ionization states prior to virtual screening. While the prerequisite for proper system preparation is generally accepted in the field, an extensive study of the preparation steps and their effect on virtual screening enrichments has not been performed. In this work, we systematically explore each of the steps involved in preparing a system for virtual screening. We first explore a large number of parameters using the Glide validation set of 36 crystal structures and 1,000 decoys. We then apply a subset of protocols to the DUD database. We show that database enrichment is improved with proper preparation and that neglecting certain steps of the preparation process produces a systematic degradation in enrichments, which can be large for some targets. We provide examples illustrating the structural changes introduced by the preparation that impact database enrichment. While the work presented here was performed with the Protein Preparation Wizard and Glide, the insights and guidance are expected to be generalizable to structure-based virtual screening with other docking methods.
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              Structures of human acetylcholinesterase in complex with pharmacologically important ligands.

              Human acetylcholinesterase (AChE) is a significant target for therapeutic drugs. Here we present high resolution crystal structures of human AChE, alone and in complexes with drug ligands; donepezil, an Alzheimer's disease drug, binds differently to human AChE than it does to Torpedo AChE. These crystals of human AChE provide a more accurate platform for further drug development than previously available.
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                Author and article information

                Contributors
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                Journal
                Journal of Biomolecular Structure and Dynamics
                Journal of Biomolecular Structure and Dynamics
                Informa UK Limited
                0739-1102
                1538-0254
                October 13 2021
                July 21 2020
                October 13 2021
                : 39
                : 15
                : 5449-5460
                Affiliations
                [1 ]Department of Biotechnology, Faculty of Science, Bartın University, Bartın, Turkey
                [2 ]Department of Pharmacy Services, Vocational School of Health Services, Harran University, Şanlıurfa, Turkey
                [3 ]Department of Medical Services and Techniques, Vocational School of Health Services, Iğdır University, Iğdır, Turkey
                [4 ]Department of Chemistry, Faculty of Arts and Sciences, Harran University, Şanlıurfa, Turkey
                [5 ]Department of Biochemistry, Faculty of Pharmacy, Erzincan Binali Yıldırım University, Erzincan, Turkey
                [6 ]Department of Chemistry, Faculty of Sciences, Atatürk University, Erzurum, Turkey
                [7 ]Department of Biochemistry, Faculty of Pharmacy, Anadolu University, Eskişehir, Turkey
                [8 ]The Rectorate of Bilecik Şeyh Edebali University, Bilecik, Turkey
                Article
                10.1080/07391102.2020.1790422
                31530244
                57bb0dd2-aa1d-48af-895a-b07e41ed1b4d
                © 2021
                History

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