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Advances in QSAR Modeling
Title statement Advances in QSAR Modeling [electronic resource] : Applications in Pharmaceutical, Chemical, Food, Agricultural and Environmental Sciences / edited by Kunal Roy. Publication Cham : Springer International Publishing : Imprint: Springer, 2017. Phys.des. X, 555 p. 132 illus., 71 illus. in color. online resource. ISBN 9783319568508 Edition Challenges and Advances in Computational Chemistry and Physics, ISSN 2542-4491 ; 24 Notes to Availability Přístup pouze pro oprávněné uživatele Another responsib. Roy, Kunal. Another responsib. SpringerLink (Online service) Subj. Headings Chemistry. * Pharmaceutical technology. * Food - Biotechnology. * Chemistry, Physical and theoretical. * Medicinal chemistry. * Agriculture. * Environmental chemistry. Form, Genre elektronické knihy electronic books Country Německo Language angličtina Document kind Electronic books URL Plný text pro studenty a zaměstnance UPOL
The book covers theoretical background and methodology as well as all current applications of Quantitative Structure-Activity Relationships (QSAR). Written by an international group of recognized researchers, this edited volume discusses applications of QSAR in multiple disciplines such as chemistry, pharmacy, environmental and agricultural sciences addressing data gaps and modern regulatory requirements. Additionally, the applications of QSAR in food science and nanoscience have been included – two areas which have only recently been able to exploit this versatile tool. This timely addition to the series is aimed at graduate students, academics and industrial scientists interested in the latest advances and applications of QSAR.
Performance parameters and validation practices in QSAR modeling -- Towards interpretable QSAR models -- The use of topological indices in QSAR and QSPR modeling -- The Maximum Common Substructure (MCS) search as a new tool for SAR and QSAR -- The universal approach for structural and physico-chemical interpretation of QSAR/QSPR models -- Generative Topographic Mapping approach -- Monte Carlo methods for solution of tasks in Environmental Sciences -- QSAR in Environmental Research -- QSAR applications for environmental chemical prioritization: Biotransformation of chemicals -- QSAR modeling in environmental risk assessment: application to the prediction of pesticide toxicity -- Counter propagation artificial neural network (CP ANN) models for prediction of carcinogenicity of non congeneric chemicals for regulatory uses -- Strategy for identification of critical nanomaterials properties linked to biological impacts: interlinking of experimental and computational approaches -- QSAR/QSPR modeling in the design of drug candidates with balanced pharmacodynamics and pharmacokinetic properties -- Molecular modeling of food chemicals as potential bioactive compounds -- On application QSARs in Food and Agricultural Sciences: History and Recent Developments.
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