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Biological Small Angle Scattering: Techniques, Strategies and Tips

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Cover of 'Biological Small Angle Scattering: Techniques, Strategies and Tips'

Table of Contents

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    Book Overview
  2. Altmetric Badge
    Chapter 1 Small Angle Scattering: Historical Perspective and Future Outlook
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    Chapter 2 Sample and Buffer Preparation for SAXS
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    Chapter 3 Considerations for Sample Preparation Using Size-Exclusion Chromatography for Home and Synchrotron Sources
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    Chapter 4 How to Analyze and Present SAS Data for Publication
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    Chapter 5 Designing and Performing Biological Solution Small-Angle Neutron Scattering Contrast Variation Experiments on Multi-component Assemblies
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    Chapter 6 SAS-Based Structural Modelling and Model Validation
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    Chapter 7 Structural Characterization of Highly Flexible Proteins by Small-Angle Scattering
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    Chapter 8 What Can We Learn from Wide-Angle Solution Scattering?
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    Chapter 9 SAS-Based Studies of Protein Fibrillation
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    Chapter 10 High Resolution Distance Distributions Determined by X-Ray and Neutron Scattering
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    Chapter 11 A Successful Combination: Coupling SE-HPLC with SAXS
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    Chapter 12 Applications of SANS to Study Membrane Protein Systems
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    Chapter 13 Hybrid Applications of Solution Scattering to Aid Structural Biology
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    Chapter 14 A Practical Guide to iSPOT Modeling: An Integrative Structural Biology Platform
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    Chapter 15 Small Angle Scattering for Pharmaceutical Applications: From Drugs to Drug Delivery Systems
Attention for Chapter 5: Designing and Performing Biological Solution Small-Angle Neutron Scattering Contrast Variation Experiments on Multi-component Assemblies
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Chapter title
Designing and Performing Biological Solution Small-Angle Neutron Scattering Contrast Variation Experiments on Multi-component Assemblies
Chapter number 5
Book title
Biological Small Angle Scattering: Techniques, Strategies and Tips
Published in
Advances in experimental medicine and biology, January 2017
DOI 10.1007/978-981-10-6038-0_5
Pubmed ID
Book ISBNs
978-9-81-106037-3, 978-9-81-106038-0
Authors

Susan Krueger

Abstract

Solution small-angle neutron scattering (SANS) combined with contrast variation provides information about the size and shape of individual components of a multi-component biological assembly, as well as the spatial arrangements between the components. The large difference in the neutron scattering properties between hydrogen and deuterium is key to the method. Isotopic substitution of deuterium for some or all of the hydrogen in either the molecule or the solvent can greatly alter the scattering properties of the biological assembly, often with little or no change to its biochemical properties. Thus, SANS with contrast variation provides unique information not easily obtained using other experimental techniques.If used correctly, SANS with contrast variation is a powerful tool for determining the solution structure of multi-component biological assemblies. This chapter discusses the principles of SANS theory that are important for contrast variation, essential considerations for experiment design and execution, and the proper approach to data analysis and structure modeling. As sample quality is extremely important for a successful contrast variation experiment, sample issues that can affect the outcome of the experiment are discussed as well as procedures used to verify the sample quality. The described methodology is focused on two-component biological complexes. However, examples of its use for multi-component assemblies are also discussed.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 10 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 10 100%

Demographic breakdown

Readers by professional status Count As %
Student > Bachelor 4 40%
Student > Master 2 20%
Student > Doctoral Student 1 10%
Student > Ph. D. Student 1 10%
Researcher 1 10%
Other 0 0%
Unknown 1 10%
Readers by discipline Count As %
Chemistry 4 40%
Chemical Engineering 1 10%
Biochemistry, Genetics and Molecular Biology 1 10%
Neuroscience 1 10%
Unknown 3 30%