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ADP-ribosylation and NAD+ Utilizing Enzymes

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Cover of 'ADP-ribosylation and NAD+ Utilizing Enzymes'

Table of Contents

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    Book Overview
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    Chapter 1 Vitamin B3 in Health and Disease: Toward the Second Century of Discovery
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    Chapter 2 Monitoring Poly(ADP-Ribosyl)ation in Response to DNA Damage in Live Cells Using Fluorescently Tagged Macrodomains
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    Chapter 3 In Vitro Techniques for ADP-Ribosylated Substrate Identification
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    Chapter 4 Assessment of Intracellular Auto-Modification Levels of ARTD10 Using Mono-ADP-Ribose-Specific Macrodomains 2 and 3 of Murine Artd8
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    Chapter 5 Biochemical and Biophysical Assays of PAR-WWE Domain Interactions and Production of iso-ADPr for PAR-Binding Analysis
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    Chapter 6 Assays for NAD+-Dependent Reactions and NAD+ Metabolites
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    Chapter 7 Generating Protein-Linked and Protein-Free Mono-, Oligo-, and Poly(ADP-Ribose) In Vitro
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    Chapter 8 Methods to Study TCDD-Inducible Poly-ADP-Ribose Polymerase (TIPARP) Mono-ADP-Ribosyltransferase Activity
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    Chapter 9 Dictyostelium as a Model to Assess Site-Specific ADP-Ribosylation Events
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    Chapter 10 Mono-ADP-Ribosylation Catalyzed by Arginine-Specific ADP-Ribosyltransferases
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    Chapter 11 Monitoring Expression and Enzyme Activity of Ecto-ARTCs
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    Chapter 12 ADP-Ribosyl-Acceptor Hydrolase Activities Catalyzed by the ARH Family of Proteins
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    Chapter 13 Mono-ADP-Ribosylhydrolase Assays
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    Chapter 14 Hydrolysis of ADP-Ribosylation by Macrodomains
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    Chapter 15 HPLC-Based Enzyme Assays for Sirtuins
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    Chapter 16 Small-Molecule Screening Assay for Mono-ADP-Ribosyltransferases
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    Chapter 17 A Simple, Sensitive, and Generalizable Plate Assay for Screening PARP Inhibitors
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    Chapter 18 Nonlocalized Searching of HCD Data for Fast and Sensitive Identification of ADP-Ribosylated Peptides
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    Chapter 19 Quantitative Determination of MAR Hydrolase Residue Specificity In Vitro by Tandem Mass Spectrometry
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    Chapter 20 Detection of ADP-Ribosylating Bacterial Toxins
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    Chapter 21 Preparation of Recombinant Alphaviruses for Functional Studies of ADP-Ribosylation
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    Chapter 22 Monitoring the Sensitivity of T Cell Populations Towards NAD+ Released During Cell Preparation
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    Chapter 23 Identifying Target RNAs of PARPs
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    Chapter 24 ADPr-Peptide Synthesis
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    Chapter 25 Identifying Genomic Sites of ADP-Ribosylation Mediated by Specific Nuclear PARP Enzymes Using Click-ChIP
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    Chapter 26 Methods for Using a Genetically Encoded Fluorescent Biosensor to Monitor Nuclear NAD +
Attention for Chapter 7: Generating Protein-Linked and Protein-Free Mono-, Oligo-, and Poly(ADP-Ribose) In Vitro
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Chapter title
Generating Protein-Linked and Protein-Free Mono-, Oligo-, and Poly(ADP-Ribose) In Vitro
Chapter number 7
Book title
ADP-ribosylation and NAD+ Utilizing Enzymes
Published in
Methods in molecular biology, August 2018
DOI 10.1007/978-1-4939-8588-3_7
Pubmed ID
Book ISBNs
978-1-4939-8587-6, 978-1-4939-8588-3
Authors

Ken Y. Lin, Dan Huang, W. Lee Kraus, Lin, Ken Y., Huang, Dan, Kraus, W. Lee

Abstract

ADP-ribosylation is a covalent posttranslational modification of proteins that is catalyzed by various types of ADP-ribosyltransferase (ART) enzymes, including members of the poly(ADP-ribose) polymerase (PARP) family. ADP-ribose (ADPR) modifications can occur as mono(ADP-ribosyl)ation, oligo(ADP-ribosyl)ation, or poly(ADP-ribosyl)ation, depending on the particular ART enzyme catalyzing the reaction, as well as the specific reaction conditions. Understanding the biology of ADP-ribosylation requires facile and robust means of generating and detecting the modification in all of its forms. Here we describe how to generate protein-linked mono(ADP-ribose), oligo(ADP-ribose), and poly(ADP-ribose) (MAR, OAR, and PAR, respectively) in vitro as an automodification of PARPs 1 or 3. First, epitope-tagged PARP-1 (a PARP polyenzyme) and PARP-3 (a PARP monoenzyme) are expressed individually in insect cells using baculovirus expression vectors, and purified using immunoaffinity chromatography. Second, the purified recombinant PARPs are incubated individually in the presence of different concentrations of NAD+ (as a donor of ADPR groups) and sheared DNA (to activate their catalytic activities) resulting in various forms of auto-ADP-ribosylation. Third, the products are confirmed using ADPR detection reagents that can distinguish among MAR, OAR, and PAR. Finally, if desired, the OAR and PAR can be deproteinized. The protein-linked and free MAR, OAR, and PAR generated in these reactions can be used as standards, substrates, or binding partners in a variety of ADPR-related assays.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 13 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 13 100%

Demographic breakdown

Readers by professional status Count As %
Student > Bachelor 3 23%
Researcher 3 23%
Student > Ph. D. Student 2 15%
Student > Master 1 8%
Professor > Associate Professor 1 8%
Other 0 0%
Unknown 3 23%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 6 46%
Agricultural and Biological Sciences 1 8%
Chemistry 1 8%
Unknown 5 38%