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Recombinant Glycoprotein Production

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Cover of 'Recombinant Glycoprotein Production'

Table of Contents

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    Book Overview
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    Chapter 1 Platforms for Recombinant Therapeutic Glycoprotein Production
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    Chapter 2 Uncovering Innovation Features and Emerging Technologies in Molecular Biology through Patent Analysis
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    Chapter 3 Production of Full-Length Antibody by Pichia pastoris
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    Chapter 4 Human Cells as Platform to Produce Gamma-Carboxylated Proteins
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    Chapter 5 Production of Recombinant Factor VIII in Human Cell Lines
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    Chapter 6 Strategies to Suspension Serum-Free Adaptation of Mammalian Cell Lines for Recombinant Glycoprotein Production
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    Chapter 7 Production of Recombinant Rabies Virus Glycoprotein by Insect Cells in a Single-Use Fixed-Bed Bioreactor
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    Chapter 8 Cell-Free Production of Protein Biologics Within 24 H
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    Chapter 9 Demonstration-Scale High-Cell-Density Fermentation of Pichia pastoris
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    Chapter 10 Large-Scale Transient Transfection of Suspension Mammalian Cells for VLP Production
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    Chapter 11 Bioreactor-Based Production of Glycoproteins in Plant Cell Suspension Cultures
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    Chapter 12 Fed-Batch CHO Cell Culture for Lab-Scale Antibody Production
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    Chapter 13 Strategies to Develop Therapeutic N- and O-Hyperglycosylated Proteins
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    Chapter 14 Expression of Glycosylated Proteins in Bacterial System and Purification by Affinity Chromatography
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    Chapter 15 Purification Methods for Recombinant Factor VIII Expressed in Human Liver SK-Hep Cells
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    Chapter 16 Purification Method for Recombinant hG-CSF by Affinity Chromatography
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    Chapter 17 Microplate-Based Method for High-Throughput Screening (HTS) of Chromatographic Conditions Studies for Recombinant Protein Purification
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    Chapter 18 Purification and Autoactivation Method for Recombinant Coagulation Factor VII
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    Chapter 19 Preparation of Immunoliposomes by Direct Coupling of Antibodies Based on a Thioether Bond
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    Chapter 20 Polyester-Based Nanoparticles for the Encapsulation of Monoclonal Antibodies
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    Chapter 21 Polyester-Based Nanoparticles for Delivery of Therapeutic Proteins
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    Chapter 22 Quantification of Coagulation Factor VIII by Selective Reaction Monitoring
Attention for Chapter 17: Microplate-Based Method for High-Throughput Screening (HTS) of Chromatographic Conditions Studies for Recombinant Protein Purification
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Chapter title
Microplate-Based Method for High-Throughput Screening (HTS) of Chromatographic Conditions Studies for Recombinant Protein Purification
Chapter number 17
Book title
Recombinant Glycoprotein Production
Published in
Methods in molecular biology, January 2018
DOI 10.1007/978-1-4939-7312-5_17
Pubmed ID
Book ISBNs
978-1-4939-7311-8, 978-1-4939-7312-5
Authors

Rimenys J. Carvalho, Thayana A. Cruz

Abstract

High-throughput screening (HTS) systems have emerged as important tools to provide fast and low cost evaluation of several conditions at once since it requires small quantities of material and sample volumes. These characteristics are extremely valuable for experiments with large number of variables enabling the application of design of experiments (DoE) strategies or simple experimental planning approaches. Once, the capacity of HTS systems to mimic chromatographic purification steps was established, several studies were performed successfully including scale down purification. Here, we propose a method for studying different purification conditions that can be used for any recombinant protein, including complex and glycosylated proteins, using low binding filter microplates.

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Mendeley readers

The data shown below were compiled from readership statistics for 11 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 11 100%

Demographic breakdown

Readers by professional status Count As %
Student > Master 2 18%
Researcher 1 9%
Professor 1 9%
Unknown 7 64%
Readers by discipline Count As %
Chemical Engineering 2 18%
Biochemistry, Genetics and Molecular Biology 1 9%
Agricultural and Biological Sciences 1 9%
Unknown 7 64%