株式会社極東書店トップ商品一覧Essentials of Bioinformatics, Volume II: In Silico Life Sciences: Medicine. 2019 ed.

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Essentials of Bioinformatics, Volume II: In Silico Life Sciences: Medicine. 2019 ed.

Essentials of Bioinformatics, Volume II: In Silico Life Sciences: Medicine. 2019 ed.

・ISBN 978-3-030-18377-6 paper EUR 199.99

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お気に入り
著者・編者Shaik, Noor Ahmad / Hakeem, Khalid Rehman / Banaganapalli, Babajan / Elango, Ramu (eds.),
出版社 (Springer Nature Switzerland AG, SZ)
出版年月2020
ページ数309 pp.
言語ENG
ニュース番号<A03-759>

解説

Bioinformatics is an integrative field of computer science, genetics, genomics, proteomics, and statistics, which has undoubtedly revolutionized the study of biology and medicine in past decades. It mainly assists in modeling, predicting and interpreting large multidimensional biological data by utilizing advanced computational methods. Despite its enormous potential, bioinformatics is not widely integrated into the academic curriculum as most life science students and researchers are still not equipped with the necessary knowledge to take advantage of this powerful tool. Hence, the primary purpose of our book is to supplement this unmet need by providing an easily accessible platform for students and researchers starting their career in life sciences. This book aims to avoid sophisticated computational algorithms and programming. Instead, it focuses on simple DIY analysis and interpretation of biological data with personal computers. Our belief is that once the beginners acquirethese basic skillsets, they will be able to handle most of the bioinformatics tools for their research work and to better understand their experimental outcomes.
Our second title of this volume set In Silico Life Sciences: Medicine provides hands-on experience in analyzing high throughput molecular data for the diagnosis, prognosis, and treatment of monogenic or polygenic human diseases. The key concepts in this volume include risk factor assessment, genetic tests and result interpretation, personalized medicine, and drug discovery. This volume is expected to train readers in both single and multi-dimensional biological analysis using open data sets, and provides a unique learning experience through clinical scenarios and case studies.