Open Access
Universally Accessible Structural Data on Macromolecular Conformation, Assembly, and Dynamics by Small Angle X-Ray Scattering for DNA Repair Insights
Naga Babu Chinnam
1
,
Aleem Syed
1
,
Kathryn H Burnett
2
,
Greg L. Hura
2, 3
,
John A. Tainer
1, 2, 4
,
Susan E Tsutakawa
2
2
Publication type: Book Chapter
Publication date: 2022-03-15
scimago Q4
SJR: 0.354
CiteScore: 2.1
Impact factor: —
ISSN: 10643745, 19406029
PubMed ID:
35290631
Abstract
Structures provide a critical breakthrough step for biological analyses, and small angle X-ray scattering (SAXS) is a powerful structural technique to study dynamic DNA repair proteins. As toxic and mutagenic repair intermediates need to be prevented from inadvertently harming the cell, DNA repair proteins often chaperone these intermediates through dynamic conformations, coordinated assemblies, and allosteric regulation. By measuring structural conformations in solution for both proteins, DNA, RNA, and their complexes, SAXS provides insight into initial DNA damage recognition, mechanisms for validation of their substrate, and pathway regulation. Here, we describe exemplary SAXS analyses of a DNA damage response protein spanning from what can be derived directly from the data to obtaining super resolution through the use of SAXS selection of atomic models. We outline strategies and tactics for practical SAXS data collection and analysis. Making these structural experiments in reach of any basic and clinical researchers who have protein, SAXS data can readily be collected at government-funded synchrotrons, typically at no cost for academic researchers. In addition to discussing how SAXS complements and enhances cryo-electron microscopy, X-ray crystallography, NMR, and computational modeling, we furthermore discuss taking advantage of recent advances in protein structure prediction in combination with SAXS analysis.
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Chinnam N. B. et al. Universally Accessible Structural Data on Macromolecular Conformation, Assembly, and Dynamics by Small Angle X-Ray Scattering for DNA Repair Insights // Methods in Molecular Biology. 2022. Vol. 2444. pp. 43-68.
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Chinnam N. B., Syed A., Burnett K. H., Hura G. L., Tainer J., Tsutakawa S. E. Universally Accessible Structural Data on Macromolecular Conformation, Assembly, and Dynamics by Small Angle X-Ray Scattering for DNA Repair Insights // Methods in Molecular Biology. 2022. Vol. 2444. pp. 43-68.
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TY - GENERIC
DO - 10.1007/978-1-0716-2063-2_4
UR - https://doi.org/10.1007/978-1-0716-2063-2_4
TI - Universally Accessible Structural Data on Macromolecular Conformation, Assembly, and Dynamics by Small Angle X-Ray Scattering for DNA Repair Insights
T2 - Methods in Molecular Biology
AU - Chinnam, Naga Babu
AU - Syed, Aleem
AU - Burnett, Kathryn H
AU - Hura, Greg L.
AU - Tainer, John A.
AU - Tsutakawa, Susan E
PY - 2022
DA - 2022/03/15
PB - Springer Nature
SP - 43-68
VL - 2444
PMID - 35290631
SN - 1064-3745
SN - 1940-6029
ER -
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@incollection{2022_Chinnam,
author = {Naga Babu Chinnam and Aleem Syed and Kathryn H Burnett and Greg L. Hura and John A. Tainer and Susan E Tsutakawa},
title = {Universally Accessible Structural Data on Macromolecular Conformation, Assembly, and Dynamics by Small Angle X-Ray Scattering for DNA Repair Insights},
publisher = {Springer Nature},
year = {2022},
volume = {2444},
pages = {43--68},
month = {mar}
}