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Multi-Wavelength Analytical Ultracentrifugation of Biopolymer Mixtures and Interactions

Amy Henrickson, Gary E. Gorbet, Alexey Savelyev, Minji Kim, Sarah K. Schultz, Xiaozhe Ding, Jason Hargreaves, Viviana Gradinaru, View ORCID ProfileUte Kothe, View ORCID ProfileBorries Demeler
doi: https://doi.org/10.1101/2021.12.29.474408
Amy Henrickson
1University of Lethbridge, Dept. of Chemistry and Biochemistry, Lethbridge, Alberta, Canada
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Gary E. Gorbet
2AUC Solutions, LLC, Houston, Texas, USA
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Alexey Savelyev
3University of Montana, Dept. of Chemistry, Missoula, Montana, USA
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Minji Kim
4Carnegie Mellon University, Dept. of Computer Science, Pittsburgh, Pennsylvania, USA
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Sarah K. Schultz
1University of Lethbridge, Dept. of Chemistry and Biochemistry, Lethbridge, Alberta, Canada
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Xiaozhe Ding
5California Institute of Technology, Neuroscience and Biological Engineering, Pasadena, California, USA
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Jason Hargreaves
6Botaneco INC, Calgary, Alberta, Canada
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Viviana Gradinaru
5California Institute of Technology, Neuroscience and Biological Engineering, Pasadena, California, USA
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Ute Kothe
1University of Lethbridge, Dept. of Chemistry and Biochemistry, Lethbridge, Alberta, Canada
7University of Manitoba, Department of Chemistry, Winnipeg, Manitoba, Canada
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  • ORCID record for Ute Kothe
Borries Demeler
1University of Lethbridge, Dept. of Chemistry and Biochemistry, Lethbridge, Alberta, Canada
2AUC Solutions, LLC, Houston, Texas, USA
3University of Montana, Dept. of Chemistry, Missoula, Montana, USA
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  • ORCID record for Borries Demeler
  • For correspondence: demeler@gmail.com
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Abstract

Multi-wavelength analytical ultracentrifugation (MW-AUC) is a recent development made possible by new analytical ultracentrifuge optical systems. MW-AUC is suitable for a wide range of applications and biopolymer systems and is poised to become an essential tool to characterize macromolecular interactions. It adds an orthogonal spectral dimension to the traditional hydrodynamic characterization by exploiting unique chromophores in analyte mixtures that may or may not interact. Here we illustrate the utility of MW-AUC for representative classes of challenging biopolymer systems, including interactions between mixtures of different sized proteins with small molecules, mixtures of loaded and empty viral AAV capsids contaminated with free DNA, and mixtures of different proteins, where some have identical hydrodynamic properties, all of which are difficult to resolve with traditional AUC methods. We explain the improvement in resolution and information content obtained by this technique compared to traditional single- or dual-wavelength approaches. We discuss experimental design considerations and limitations of the method, and address the advantages and disadvantages of the two MW optical systems available today, and the differences in data analysis strategies between the two systems.

Competing Interest Statement

The authors have declared no competing interest.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY 4.0 International license.
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Posted December 30, 2021.
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Multi-Wavelength Analytical Ultracentrifugation of Biopolymer Mixtures and Interactions
Amy Henrickson, Gary E. Gorbet, Alexey Savelyev, Minji Kim, Sarah K. Schultz, Xiaozhe Ding, Jason Hargreaves, Viviana Gradinaru, Ute Kothe, Borries Demeler
bioRxiv 2021.12.29.474408; doi: https://doi.org/10.1101/2021.12.29.474408
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Multi-Wavelength Analytical Ultracentrifugation of Biopolymer Mixtures and Interactions
Amy Henrickson, Gary E. Gorbet, Alexey Savelyev, Minji Kim, Sarah K. Schultz, Xiaozhe Ding, Jason Hargreaves, Viviana Gradinaru, Ute Kothe, Borries Demeler
bioRxiv 2021.12.29.474408; doi: https://doi.org/10.1101/2021.12.29.474408

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