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Plant Phosphoproteomics

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Cover of 'Plant Phosphoproteomics'

Table of Contents

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    Book Overview
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    Chapter 1 The Plant Kinome
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    Chapter 2 Phosphatases in plants.
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    Chapter 3 Phosphoproteomics in cereals.
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    Chapter 4 Screening of Kinase Substrates Using Kinase Knockout Mutants
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    Chapter 5 Phosphopeptide Profiling of Receptor Kinase Mutants
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    Chapter 6 Combining Metabolic (15)N Labeling with Improved Tandem MOAC for Enhanced Probing of the Phosphoproteome.
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    Chapter 7 Kinase activity and specificity assay using synthetic peptides.
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    Chapter 8 Absolute quantitation of protein posttranslational modification isoform.
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    Chapter 9 Phosphorylation Stoichiometry Determination in Plant Photosynthetic Membranes
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    Chapter 10 Phosphopeptide immuno-affinity enrichment to enhance detection of tyrosine phosphorylation in plants.
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    Chapter 11 The Peptide Microarray ChloroPhos1.0: A Screening Tool for the Identification of Arabidopsis thaliana Chloroplast Protein Kinase Substrates
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    Chapter 12 Plant Protein Kinase Substrates Identification Using Protein Microarrays
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    Chapter 13 Targeted Analysis of Protein Phosphorylation by 2D Electrophoresis.
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    Chapter 14 Computational phosphorylation network reconstruction: methods and resources.
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    Chapter 15 Computational Identification of Protein Kinases and Kinase-Specific Substrates in Plants
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    Chapter 16 Databases for plant phosphoproteomics.
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    Chapter 17 Phosphorylation Site Prediction in Plants
Attention for Chapter 17: Phosphorylation Site Prediction in Plants
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Chapter title
Phosphorylation Site Prediction in Plants
Chapter number 17
Book title
Plant Phosphoproteomics
Published in
Methods in molecular biology, January 2015
DOI 10.1007/978-1-4939-2648-0_17
Pubmed ID
Book ISBNs
978-1-4939-2647-3, 978-1-4939-2648-0
Authors

Qiuming Yao, Waltraud X. Schulze, Dong Xu, Yao, Qiuming, Schulze, Waltraud X., Xu, Dong

Abstract

Protein phosphorylation events on serine, threonine, and tyrosine residues are the most pervasive protein covalent bond modifications in plant signaling. Both low and high throughput studies reveal the importance of phosphorylation in plant molecular biology. Although becoming more and more common, the proteome-wide screening on phosphorylation by experiments remains time consuming and costly. Therefore, in silico prediction methods are proposed as a complementary analysis tool to enhance the phosphorylation site identification, develop biological hypothesis, or help experimental design. These methods build statistical models based on the experimental data, and they do not have some of the technical-specific bias, which may have advantage in proteome-wide analysis. More importantly computational methods are very fast and cheap to run, which makes large-scale phosphorylation identifications very practical for any types of biological study. Thus, the phosphorylation prediction tools become more and more popular. In this chapter, we will focus on plant specific phosphorylation site prediction tools, with essential illustration of technical details and application guidelines. We will use Musite, PhosPhAt and PlantPhos as the representative tools. We will present the results on the prediction of the Arabidopsis protein phosphorylation events to give users a general idea of the performance range of the three tools, together with their strengths and limitations. We believe these prediction tools will contribute more and more to the plant phosphorylation research community.

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Mendeley readers

The data shown below were compiled from readership statistics for 22 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United Kingdom 1 5%
China 1 5%
Unknown 20 91%

Demographic breakdown

Readers by professional status Count As %
Researcher 5 23%
Student > Bachelor 4 18%
Student > Ph. D. Student 3 14%
Lecturer 1 5%
Professor 1 5%
Other 3 14%
Unknown 5 23%
Readers by discipline Count As %
Computer Science 4 18%
Medicine and Dentistry 4 18%
Biochemistry, Genetics and Molecular Biology 3 14%
Environmental Science 1 5%
Agricultural and Biological Sciences 1 5%
Other 3 14%
Unknown 6 27%