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Proteomics Data Analysis / edited by Daniela Cecconi.

SpringerProtocols (1984- current) Available online

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Format:
Book
Contributor:
Cecconi, Daniela, Editor.
SpringerLink (Online service)
Series:
Springer Protocols (Springer-12345)
Methods in molecular biology 1940-6029 ; 2361
Methods in Molecular Biology, 1940-6029 ; 2361
Language:
English
Subjects (All):
Chemistry.
Bioinformatics.
Statistics.
Local Subjects:
Chemistry.
Bioinformatics.
Statistics.
Physical Description:
1 online resource (XIII, 326 pages) : 54 illustrations, 46 illustrations in color.
Edition:
1st ed. 2021.
Contained In:
Springer Nature eBook
Place of Publication:
New York, NY : Springer US : Imprint: Humana, 2021.
System Details:
text file PDF
Summary:
This thorough book collects methods and strategies to analyze proteomics data. It is intended to describe how data obtained by gel-based or gel-free proteomics approaches can be inspected, organized, and interpreted to extrapolate biological information. Organized into four sections, the volume explores strategies to analyze proteomics data obtained by gel-based approaches, different data analysis approaches for gel-free proteomics experiments, bioinformatic tools for the interpretation of proteomics data to obtain biological significant information, as well as methods to integrate proteomics data with other omics datasets including genomics, transcriptomics, metabolomics, and other types of data. Written for the highly successful Methods in Molecular Biology series, chapters include the kind of detailed implementation advice that will ensure high quality results in the lab. Authoritative and practical, Proteomics Data Analysis serves as an ideal guide to introduce researchers, both experienced and novice, to new tools and approaches for data analysis to encourage the further study of proteomics. Chapter 16 is available open access under a Creative Commons Attribution 4.0 International License via link.springer.com.
Contents:
Two-Dimensional Gel Electrophoresis Image Analysis
Chemometric Tools for 2D-PAGE Data Analysis
Software Options for the Analysis of MS Proteomic Data
Analysis of Label-Based Quantitative Proteomics Data Using IsoProt
Quantification of Changes in Protein Expression Using SWATH Proteomics.-Data Processing and Analysis for DIA-Based Phosphoproteomics Using Spectronaut
Enhanced Glycopeptide Identification Using a GlyConnect Compozitor-Derived Glycan Composition File
Elaboration Pipeline for the Management of MALDI-MS Imaging Datasets
Features Selection and Extraction in Statistical Analysis of Proteomics Datasets
ORA, FCS, and PT Strategies in Functional Enrichment Analysis
A Strategy for the Annotation and GO Enrichment Analysis of a List of Differentially Expressed Proteins Using ProteoRE
Protein Subcellular Localization Prediction
Protein Secretion Prediction Tools and Extracellular Vesicles Databases
Databases for Protein-Protein Interactions
Machine and Deep Learning for Prediction of Subcellular Localization
Deep Learning for Protein-Protein Interaction Site Prediction
Integrative Analysis of Incongruous Cancer Genomics and Proteomics Datasets
Integration of Proteomics and Other Omics Data.
Other Format:
Printed edition:
ISBN:
978-1-0716-1641-3
9781071616413
Access Restriction:
Restricted for use by site license.

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