Cover image for Pharmaceutical Data Mining : Approaches and Applications for Drug Discovery.
Pharmaceutical Data Mining : Approaches and Applications for Drug Discovery.
Title:
Pharmaceutical Data Mining : Approaches and Applications for Drug Discovery.
Author:
Balakin, Konstantin V.
ISBN:
9780470567616
Personal Author:
Edition:
1st ed.
Physical Description:
1 online resource (584 pages)
Series:
Wiley Series on Technologies for the Pharmaceutical Industry Ser. ; v.6

Wiley Series on Technologies for the Pharmaceutical Industry Ser.
Contents:
PHARMACEUTICAL DATA MINING -- CONTENTS -- PREFACE -- ACKNOWLEDGMENTS -- CONTRIBUTORS -- PART I DATA MINING IN THE PHARMACEUTICAL INDUSTRY: A GENERAL OVERVIEW -- 1 A History of the Development of Data Mining in Pharmaceutical Research -- 2 Drug Gold and Data Dragons: Myths and Realities of Data Mining in the Pharmaceutical Industry -- 3 Application of Data Mining Algorithms in Pharmaceutical Research and Development -- PART II CHEMOINFORMATICS-BASED APPLICATIONS -- 4 Data Mining Approaches for Compound Selection and Iterative Screening -- 5 Prediction of Toxic Effects of Pharmaceutical Agents -- 6 Chemogenomics-Based Design of GPCR-Targeted Libraries Using Data Mining Techniques -- 7 Mining High-Throughput Screening Data by Novel Knowledge-Based Optimization Analysis -- PART III BIOINFORMATICS-BASED APPLICATIONS -- 8 Mining DNA Microarray Gene Expression Data -- 9 Bioinformatics Approaches for Analysis of Protein-Ligand Interactions -- 10 Analysis of Toxicogenomic Databases -- 11 Bridging the Pharmaceutical Shortfall: Informatics Approaches to the Discovery of Vaccines, Antigens, Epitopes, and Adjuvants -- PART IV DATA MINING METHODS IN CLINICAL DEVELOPMENT -- 12 Data Mining in Pharmacovigilance -- 13 Data Mining Methods as Tools for Predicting Individual Drug Response -- 14 Data Mining Methods in Pharmaceutical Formulation -- PART V DATA MINING ALGORITHMS AND TECHNOLOGIES -- 15 Dimensionality Reduction Techniques for Pharmaceutical Data Mining -- 16 Advanced Artificial Intelligence Methods Used in the Design of Pharmaceutical Agents -- 17 Databases for Chemical and Biological Information -- 18 Mining Chemical Structural Information from the Literature -- INDEX.
Abstract:
Leading experts illustrate how sophisticated computational data mining techniques can impact contemporary drug discovery and development In the era of post-genomic drug development, extracting and applying knowledge from chemical, biological, and clinical data is one of the greatest challenges facing the pharmaceutical industry. Pharmaceutical Data Mining brings together contributions from leading academic and industrial scientists, who address both the implementation of new data mining technologies and application issues in the industry. This accessible, comprehensive collection discusses important theoretical and practical aspects of pharmaceutical data mining, focusing on diverse approaches for drug discovery-including chemogenomics, toxicogenomics, and individual drug response prediction. The five main sections of this volume cover: A general overview of the discipline, from its foundations to contemporary industrial applications Chemoinformatics-based applications Bioinformatics-based applications Data mining methods in clinical development Data mining algorithms, technologies, and software tools, with emphasis on advanced algorithms and software that are currently used in the industry or represent promising approaches In one concentrated reference, Pharmaceutical Data Mining reveals the role and possibilities of these sophisticated techniques in contemporary drug discovery and development. It is ideal for graduate-level courses covering pharmaceutical science, computational chemistry, and bioinformatics. In addition, it provides insight to pharmaceutical scientists, principal investigators, principal scientists, research directors, and all scientists working in the field of drug discovery and development and associated industries.
Local Note:
Electronic reproduction. Ann Arbor, Michigan : ProQuest Ebook Central, 2017. Available via World Wide Web. Access may be limited to ProQuest Ebook Central affiliated libraries.
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