Graph-based Analysis of Protein-protein Interaction Data Sets

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Publisher :
ISBN 13 :
Total Pages : 209 pages
Book Rating : 4.:/5 (153 download)

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Book Synopsis Graph-based Analysis of Protein-protein Interaction Data Sets by :

Download or read book Graph-based Analysis of Protein-protein Interaction Data Sets written by and published by . This book was released on 2007 with total page 209 pages. Available in PDF, EPUB and Kindle. Book excerpt: High-throughput methods for detecting protein-protein interactions (PPI) have recently gained popularity. These rapid advances in technology have given researchers an initial global picture of protein interactions on a genomic scale. The usefulness of this understanding is, however, typically compromised by noisy data and intrinsic complexity of the biological system. In this dissertation, we attempt to solve some problems in effectively analyzing the data. Firstly, since there are lots of false positives in experimentally detected interactions, we propose a novel topological measurement to select reliable interactions from the noisy data. Our method is based on the small-world network property of the protein interaction network and generalizes purely local measures adopted previously. Based on our observation that the true positive interactions in protein complexes and tightly coupled networks demonstrate dense interactions, we propose to measure the significance of two proteins' co-existence in a dense network as an index of interaction reliability. Our topological measure also integrates the prior confidence of each data set. The experiments demonstrate that our measure can be used to identify reliable interactions and to predict potential interactions with improved performance. Meanwhile, we discovered two additional properties: namely, the short alternative path property and the local clustering of network property of the protein interaction network, which are generalizations of previously known protein interaction network properties. Secondly, we address the problem of effectively incorporating domain knowledge into the protein clustering process. Based on our analysis of the relationship of network topology and biological relevance, we propose a novel semi-supervised clustering algorithm suitable for the noisy protein interaction network. We choose to estimate the pairwise similarity between each protein pair and use this similarity as input to clustering algorithms. Therefore, it is not bounded to any specific clustering methods. We select topological features in the network and define a model to map these features to pairwise similarities. The known protein annotations are used to train the model. Using this model, we can estimate the pairwise similarity between each pair of proteins. Finally, normal unsupervised clustering algorithms can be applied using the similarity matrix. Since our similarity measure has already incorporated prior protein annotations, our algorithm can detect clusters with improved performance. Also, the unsupervised clustering algorithms we adopt maintain the explorative nature and therefore are capable of detecting new protein functional groups. Thirdly, we investigate the problem of protein complex detection. Protein complexes can be roughly considered as densely connected subgraphs in the network. The difficulties in this problem are caused by the fact that protein complexes may overlap with each other, i.e. containing shared proteins, and the protein interaction network contains a lot of noise. To overcome these difficulties, we propose a novel subgraph quality measure, and based on the measure, we propose a novel "seed-refine" algorithm. Our subgraph quality measure achieves two goals: (1) it provides a statistically meaningful combination of inside links, outside links and the size of the subgraph and, (2) it provides a statistically meaningful combination of the quality contribution of each vertex in the subgraph. Our "seed-refine" algorithm consists of a two-layer seeding heuristic to find good seeds and a novel subgraph refinement method that controls the overlap between subgraphs. Our algorithm allows to output overlapping subgraphs but methodologically makes it possible only when there is strong evidence to do so. Experiments confirm the effectiveness of our method.

Graph-based Protein-protein Interaction Prediction in Saccharomyces Cerevisiae

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (244 download)

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Book Synopsis Graph-based Protein-protein Interaction Prediction in Saccharomyces Cerevisiae by :

Download or read book Graph-based Protein-protein Interaction Prediction in Saccharomyces Cerevisiae written by and published by . This book was released on 2008 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: The term 'protein-protein interaction (PPI)' refers to the study of associations between proteins as manifested through biochemical processes such as formation of structures, signal transduction, transport, and phosphorylation. PPI play an important role in the study of biological processes. Many PPI have been discovered over the years and several databases have been created to store the information about these interactions. von Mering (2002) states that about 80,000 interactions between yeast proteins are currently available from various high-throughput interaction detection methods. Determining PPI using high-throughput methods is not only expensive and time-consuming, but also generates a high number of false positives and false negatives. Therefore, there is a need for computational approaches that can help in the process of identifying real protein interactions. Several methods have been designed to address the task of predicting protein-protein interactions using machine learning. Most of them use features extracted from protein sequences (e.g., amino acids composition) or associated with protein sequences directly (e.g., GO annotation). Others use relational and structural features extracted from the PPI network, along with the features related to the protein sequence. When using the PPI network to design features, several node and topological features can be extracted directly from the associated graph. In this thesis, important graph features of a protein interaction network that help in predicting protein interactions are identified. Two previously published datasets are used in this study. A third dataset has been created by combining three PPI databases. Several classifiers are applied on the graph attributes extracted from protein interaction networks of these three datasets. A detailed study has been performed in this present work to determine if graph attributes extracted from a protein interaction network are more predictive than biological features of protein interactions. The results indicate that the performance criteria (such as Sensitivity, Specificity and AUC score) improve when graph features are combined with biological features.

Data Management of Protein Interaction Networks

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Publisher : John Wiley & Sons
ISBN 13 : 1118103734
Total Pages : 145 pages
Book Rating : 4.1/5 (181 download)

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Book Synopsis Data Management of Protein Interaction Networks by : Mario Cannataro

Download or read book Data Management of Protein Interaction Networks written by Mario Cannataro and published by John Wiley & Sons. This book was released on 2012-02-03 with total page 145 pages. Available in PDF, EPUB and Kindle. Book excerpt: Current PPI databases do not offer sophisticated querying interfaces and especially do not integrate existing information about proteins. Current algorithms for PIN analysis use only topological information, while emerging approaches attempt to exploit the biological knowledge related to proteins and kinds of interaction, e.g. protein function, localization, structure, described in Gene Ontology or PDB. The book discusses technologies, standards and databases for, respectively, generating, representing and storing PPI data. It also describes main algorithms and tools for the analysis, comparison and knowledge extraction from PINs. Moreover, some case studies and applications of PINs are also discussed.

Networks in Cell Biology

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Publisher : Cambridge University Press
ISBN 13 : 0521882737
Total Pages : 282 pages
Book Rating : 4.5/5 (218 download)

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Book Synopsis Networks in Cell Biology by : Mark Buchanan

Download or read book Networks in Cell Biology written by Mark Buchanan and published by Cambridge University Press. This book was released on 2010-05-13 with total page 282 pages. Available in PDF, EPUB and Kindle. Book excerpt: Key introductory text for graduate students and researchers in physics, biology and biochemistry.

Biological Data Mining in Protein Interaction Networks

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Publisher : IGI Global
ISBN 13 : 1605663999
Total Pages : 450 pages
Book Rating : 4.6/5 (56 download)

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Book Synopsis Biological Data Mining in Protein Interaction Networks by : Li, Xiao-Li

Download or read book Biological Data Mining in Protein Interaction Networks written by Li, Xiao-Li and published by IGI Global. This book was released on 2009-05-31 with total page 450 pages. Available in PDF, EPUB and Kindle. Book excerpt: "The goal of this book is to disseminate research results and best practices from cross-disciplinary researchers and practitioners interested in, and working on bioinformatics, data mining, and proteomics"--Provided by publisher.

Computational Prediction of Protein Complexes from Protein Interaction Networks

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Publisher : Morgan & Claypool
ISBN 13 : 1970001534
Total Pages : 297 pages
Book Rating : 4.9/5 (7 download)

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Book Synopsis Computational Prediction of Protein Complexes from Protein Interaction Networks by : Sriganesh Srihari

Download or read book Computational Prediction of Protein Complexes from Protein Interaction Networks written by Sriganesh Srihari and published by Morgan & Claypool. This book was released on 2017-05-30 with total page 297 pages. Available in PDF, EPUB and Kindle. Book excerpt: Complexes of physically interacting proteins constitute fundamental functional units that drive almost all biological processes within cells. A faithful reconstruction of the entire set of protein complexes (the "complexosome") is therefore important not only to understand the composition of complexes but also the higher level functional organization within cells. Advances over the last several years, particularly through the use of high-throughput proteomics techniques, have made it possible to map substantial fractions of protein interactions (the "interactomes") from model organisms including Arabidopsis thaliana (a flowering plant), Caenorhabditis elegans (a nematode), Drosophila melanogaster (fruit fly), and Saccharomyces cerevisiae (budding yeast). These interaction datasets have enabled systematic inquiry into the identification and study of protein complexes from organisms. Computational methods have played a significant role in this context, by contributing accurate, efficient, and exhaustive ways to analyze the enormous amounts of data. These methods have helped to compensate for some of the limitations in experimental datasets including the presence of biological and technical noise and the relative paucity of credible interactions. In this book, we systematically walk through computational methods devised to date (approximately between 2000 and 2016) for identifying protein complexes from the network of protein interactions (the protein-protein interaction (PPI) network). We present a detailed taxonomy of these methods, and comprehensively evaluate them for protein complex identification across a variety of scenarios including the absence of many true interactions and the presence of false-positive interactions (noise) in PPI networks. Based on this evaluation, we highlight challenges faced by the methods, for instance in identifying sparse, sub-, or small complexes and in discerning overlapping complexes, and reveal how a combination of strategies is necessary to accurately reconstruct the entire complexosome.

Protein-protein Interactions and Networks

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Publisher : Springer Science & Business Media
ISBN 13 : 1848001258
Total Pages : 198 pages
Book Rating : 4.8/5 (48 download)

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Book Synopsis Protein-protein Interactions and Networks by : Anna Panchenko

Download or read book Protein-protein Interactions and Networks written by Anna Panchenko and published by Springer Science & Business Media. This book was released on 2010-04-06 with total page 198 pages. Available in PDF, EPUB and Kindle. Book excerpt: The biological interactions of living organisms, and protein-protein interactions in particular, are astonishingly diverse. This comprehensive book provides a broad, thorough and multidisciplinary coverage of its field. It integrates different approaches from bioinformatics, biochemistry, computational analysis and systems biology to offer the reader a comprehensive global view of the diverse data on protein-protein interactions and protein interaction networks.

Biological Network Analysis

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Publisher : Elsevier
ISBN 13 : 0128193514
Total Pages : 212 pages
Book Rating : 4.1/5 (281 download)

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Book Synopsis Biological Network Analysis by : Pietro Hiram Guzzi

Download or read book Biological Network Analysis written by Pietro Hiram Guzzi and published by Elsevier. This book was released on 2020-05-11 with total page 212 pages. Available in PDF, EPUB and Kindle. Book excerpt: Biological Network Analysis: Trends, Approaches, Graph Theory, and Algorithms considers three major biological networks, including Gene Regulatory Networks (GRN), Protein-Protein Interaction Networks (PPIN), and Human Brain Connectomes. The book's authors discuss various graph theoretic and data analytics approaches used to analyze these networks with respect to available tools, technologies, standards, algorithms and databases for generating, representing and analyzing graphical data. As a wide variety of algorithms have been developed to analyze and compare networks, this book is a timely resource. Presents recent advances in biological network analysis, combining Graph Theory, Graph Analysis, and various network models Discusses three major biological networks, including Gene Regulatory Networks (GRN), Protein-Protein Interaction Networks (PPIN) and Human Brain Connectomes Includes a discussion of various graph theoretic and data analytics approaches

Principles of Computational Cell Biology

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Publisher : John Wiley & Sons
ISBN 13 : 3527333584
Total Pages : 458 pages
Book Rating : 4.5/5 (273 download)

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Book Synopsis Principles of Computational Cell Biology by : Volkhard Helms

Download or read book Principles of Computational Cell Biology written by Volkhard Helms and published by John Wiley & Sons. This book was released on 2019-04-29 with total page 458 pages. Available in PDF, EPUB and Kindle. Book excerpt: Computational cell biology courses are increasingly obligatory for biology students around the world but of course also a must for mathematics and informatics students specializing in bioinformatics. This book, now in its second edition is geared towards both audiences. The author, Volkhard Helms, has, in addition to extensive teaching experience, a strong background in biology and informatics and knows exactly what the key points are in making the book accessible for students while still conveying in depth knowledge of the subject.About 50% of new content has been added for the new edition. Much more room is now given to statistical methods, and several new chapters address protein-DNA interactions, epigenetic modifications, and microRNAs.

Protein Interaction Networks

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Publisher : Cambridge University Press
ISBN 13 : 1139479032
Total Pages : 283 pages
Book Rating : 4.1/5 (394 download)

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Book Synopsis Protein Interaction Networks by : Aidong Zhang

Download or read book Protein Interaction Networks written by Aidong Zhang and published by Cambridge University Press. This book was released on 2009-04-06 with total page 283 pages. Available in PDF, EPUB and Kindle. Book excerpt: The analysis of protein-protein interactions is fundamental to the understanding of cellular organization, processes, and functions. Proteins seldom act as single isolated species; rather, proteins involved in the same cellular processes often interact with each other. Functions of uncharacterized proteins can be predicted through comparison with the interactions of similar known proteins. Recent large-scale investigations of protein-protein interactions using such techniques as two-hybrid systems, mass spectrometry, and protein microarrays have enriched the available protein interaction data and facilitated the construction of integrated protein-protein interaction networks. The resulting large volume of protein-protein interaction data has posed a challenge to experimental investigation. This book provides a comprehensive understanding of the computational methods available for the analysis of protein-protein interaction networks. It offers an in-depth survey of a range of approaches, including statistical, topological, data-mining, and ontology-based methods. The author discusses the fundamental principles underlying each of these approaches and their respective benefits and drawbacks, and she offers suggestions for future research.

Bioconductor Case Studies

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Publisher : Springer Science & Business Media
ISBN 13 : 0387772405
Total Pages : 287 pages
Book Rating : 4.3/5 (877 download)

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Book Synopsis Bioconductor Case Studies by : Florian Hahne

Download or read book Bioconductor Case Studies written by Florian Hahne and published by Springer Science & Business Media. This book was released on 2010-06-09 with total page 287 pages. Available in PDF, EPUB and Kindle. Book excerpt: Bioconductor software has become a standard tool for the analysis and comprehension of data from high-throughput genomics experiments. Its application spans a broad field of technologies used in contemporary molecular biology. In this volume, the authors present a collection of cases to apply Bioconductor tools in the analysis of microarray gene expression data. Topics covered include: (1) import and preprocessing of data from various sources; (2) statistical modeling of differential gene expression; (3) biological metadata; (4) application of graphs and graph rendering; (5) machine learning for clustering and classification problems; (6) gene set enrichment analysis. Each chapter of this book describes an analysis of real data using hands-on example driven approaches. Short exercises help in the learning process and invite more advanced considerations of key topics. The book is a dynamic document. All the code shown can be executed on a local computer, and readers are able to reproduce every computation, figure, and table.

Graph-Based Representations in Pattern Recognition

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Publisher : Springer
ISBN 13 : 3642382215
Total Pages : 264 pages
Book Rating : 4.6/5 (423 download)

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Book Synopsis Graph-Based Representations in Pattern Recognition by : Walter Kropatsch

Download or read book Graph-Based Representations in Pattern Recognition written by Walter Kropatsch and published by Springer. This book was released on 2013-12-06 with total page 264 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the refereed proceedings of the 9th IAPR-TC-15 International Workshop on Graph-Based Representations in Pattern Recognition, GbRPR 2013, held in Vienna, Austria, in May 2013. The 24 papers presented in this volume were carefully reviewed and selected from 27 submissions. They are organized in topical sections named: finding subregions in graphs; graph matching; classification; graph kernels; properties of graphs; topology; graph representations, segmentation and shape; and search in graphs.

Protein-Protein Interaction Networks

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Publisher : Humana
ISBN 13 : 9781493998722
Total Pages : 0 pages
Book Rating : 4.9/5 (987 download)

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Book Synopsis Protein-Protein Interaction Networks by : Stefan Canzar

Download or read book Protein-Protein Interaction Networks written by Stefan Canzar and published by Humana. This book was released on 2019-10-04 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume explores techniques that study interactions between proteins in different species, and combines them with context-specific data, analysis of omics datasets, and assembles individual interactions into higher-order semantic units, i.e., protein complexes and functional modules. The chapters in this book cover computational methods that solve diverse tasks such as the prediction of functional protein-protein interactions; the alignment-based comparison of interaction networks by SANA; using the RaptorX-ComplexContact webserver to predict inter-protein residue-residue contacts; the docking of alternative confirmations of proteins participating in binary interactions and the visually-guided selection of a docking model using COZOID; the detection of novel functional units by KeyPathwayMiner and how PathClass can use such de novo pathways to classify breast cancer subtypes. Written in the highly successful Methods in Molecular Biology series format, chapters include introductions to their respective topics, lists of the necessary hardware- and software, step-by-step, readily reproducible computational protocols, and tips on troubleshooting and avoiding known pitfalls. Cutting-edge and comprehensive, Protein-Protein Interaction Networks: Methods and Protocols is a valuable resource for both novice and expert researchers who are interested in learning more about this evolving field.

Protein-Protein Interaction Networks

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Publisher : Humana
ISBN 13 : 9781493998753
Total Pages : 286 pages
Book Rating : 4.9/5 (987 download)

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Book Synopsis Protein-Protein Interaction Networks by : Stefan Canzar

Download or read book Protein-Protein Interaction Networks written by Stefan Canzar and published by Humana. This book was released on 2020-10-18 with total page 286 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume explores techniques that study interactions between proteins in different species, and combines them with context-specific data, analysis of omics datasets, and assembles individual interactions into higher-order semantic units, i.e., protein complexes and functional modules. The chapters in this book cover computational methods that solve diverse tasks such as the prediction of functional protein-protein interactions; the alignment-based comparison of interaction networks by SANA; using the RaptorX-ComplexContact webserver to predict inter-protein residue-residue contacts; the docking of alternative confirmations of proteins participating in binary interactions and the visually-guided selection of a docking model using COZOID; the detection of novel functional units by KeyPathwayMiner and how PathClass can use such de novo pathways to classify breast cancer subtypes. Written in the highly successful Methods in Molecular Biology series format, chapters include introductions to their respective topics, lists of the necessary hardware- and software, step-by-step, readily reproducible computational protocols, and tips on troubleshooting and avoiding known pitfalls. Cutting-edge and comprehensive, Protein-Protein Interaction Networks: Methods and Protocols is a valuable resource for both novice and expert researchers who are interested in learning more about this evolving field.

Protein Interaction Networks in Health and Disease

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Publisher : Frontiers Media SA
ISBN 13 : 2889199827
Total Pages : 91 pages
Book Rating : 4.8/5 (891 download)

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Book Synopsis Protein Interaction Networks in Health and Disease by : Spyros Petrakis

Download or read book Protein Interaction Networks in Health and Disease written by Spyros Petrakis and published by Frontiers Media SA. This book was released on 2016-10-19 with total page 91 pages. Available in PDF, EPUB and Kindle. Book excerpt: The identification and mapping of protein-protein interactions (PPIs) is a major goal in systems biology. Experimental data are currently produced in large scale using a variety of high-throughput assays in yeast or mammalian systems. Analysis of these data using computational tools leads to the construction of large protein interaction networks, which help researchers identify novel protein functions. However, our current view of protein interaction networks is still limited and there is an active field of research trying to further develop this concept to include important processes: the topology of interactions and their changes in real time, the effects of competition for binding to the same protein region, PPI variation due to alternative splicing or post-translational modifications, etc. In particular, a clinically relevant topic for development of the concept of protein interactions networks is the consideration of mutant isoforms, which may be responsible for a pathological condition. Mutations in proteins may result in loss of normal interactions and appearance of novel abnormal interactions that may affect a protein’s function and biological cycle. This Research Topic presents novel findings and recent achievements in the field of protein interaction networks with a focus on disease. Authors describe methods for the identification and quantification of PPIs, the annotation and analysis of networks, considering PPIs and protein complexes formed by mutant proteins associated with pathological conditions or genetic diseases.

Advanced Analysis of Gene Expression Microarray Data

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Publisher : World Scientific
ISBN 13 : 9812566457
Total Pages : 358 pages
Book Rating : 4.8/5 (125 download)

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Book Synopsis Advanced Analysis of Gene Expression Microarray Data by : Aidong Zhang

Download or read book Advanced Analysis of Gene Expression Microarray Data written by Aidong Zhang and published by World Scientific. This book was released on 2006 with total page 358 pages. Available in PDF, EPUB and Kindle. Book excerpt: Focuses on the development and application of the latest advanced data mining, machine learning, and visualization techniques for the identification of interesting, significant, and novel patterns in gene expression microarray data. Describes cutting-edge methods for analyzing gene expression microarray data. Coverage includes gene-based analysis, sample-based analysis, pattern-based analysis and visualization tools.

Protein Interactions: Computational Methods, Analysis And Applications

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Publisher : World Scientific
ISBN 13 : 9811211884
Total Pages : 424 pages
Book Rating : 4.8/5 (112 download)

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Book Synopsis Protein Interactions: Computational Methods, Analysis And Applications by : M Michael Gromiha

Download or read book Protein Interactions: Computational Methods, Analysis And Applications written by M Michael Gromiha and published by World Scientific. This book was released on 2020-03-05 with total page 424 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book is indexed in Chemical Abstracts ServiceThe interactions of proteins with other molecules are important in many cellular activities. Investigations have been carried out to understand the recognition mechanism, identify the binding sites, analyze the the binding affinity of complexes, and study the influence of mutations on diseases. Protein interactions are also crucial in structure-based drug design.This book covers computational analysis of protein-protein, protein-nucleic acid and protein-ligand interactions and their applications. It provides up-to-date information and the latest developments from experts in the field, using illustrations to explain the key concepts and applications. This volume can serve as a single source on comparative studies of proteins interacting with proteins/DNAs/RNAs/carbohydrates and small molecules.