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Sequential Activation and Local Unfolding Control Poly(A)-Binding Protein Condensation

View ORCID ProfileRuofan Chen, Darren Kahan, Julia Shangguan, View ORCID ProfileJoseph R. Sachleben, View ORCID ProfileJoshua A. Riback, D. Allan Drummond, View ORCID ProfileTobin R. Sosnick
doi: https://doi.org/10.1101/2022.09.21.508844
Ruofan Chen
1Pritzker School of Molecular Engineering, University of Chicago; Chicago, IL, USA
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Darren Kahan
2Department of Biochemistry and Molecular Biology, University of Chicago; Chicago, IL, USA
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Julia Shangguan
2Department of Biochemistry and Molecular Biology, University of Chicago; Chicago, IL, USA
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Joseph R. Sachleben
3Division of Biological Sciences, University of Chicago; Chicago, IL, USA
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Joshua A. Riback
4Graduate Program in Biophysical Sciences, University of Chicago; Chicago, IL, USA
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D. Allan Drummond
2Department of Biochemistry and Molecular Biology, University of Chicago; Chicago, IL, USA
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Tobin R. Sosnick
1Pritzker School of Molecular Engineering, University of Chicago; Chicago, IL, USA
2Department of Biochemistry and Molecular Biology, University of Chicago; Chicago, IL, USA
5Institute for Biophysical Dynamics, University of Chicago; Chicago, IL, USA
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  • For correspondence: trsosnic@uchicago.edu
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Abstract

Eukaryotic cells form biomolecular condensates to sense and adapt to their environment1,2. Poly(A)-binding protein (Pab1), a canonical stress granule marker3,4, condenses upon heat shock or starvation, promoting adaptation5. The molecular basis of condensation has remained elusive due to a dearth of techniques to probe structure directly in condensates. Here we apply hydrogen-deuterium exchange/mass spectrometry (HDX-MS) to investigate the molecular mechanism of Pab1’s condensation. We find that Pab1’s four RNA recognition motifs (RRMs) undergo different levels of partial unfolding upon condensation, and the changes are similar for thermal and pH stresses. Although structural heterogeneity is observed, the ability of MS to describe individual subpopulations allows us to identify which regions become partially unfolded and contribute to the condensate’s interaction network. Our data yield a clear molecular picture of Pab1’s stress-triggered condensation, which we term sequential activation, wherein each RRM becomes activated at a temperature where it partially unfolds and associates with other likewise activated RRMs to form the condensate. This model thus implies that sequential activation is dictated by the underlying free energy surface, an effect we refer to as thermodynamic specificity. Our study represents a methodological advance for elucidating the interactions that drive biomolecular condensation that we anticipate will be widely applicable. Furthermore, our findings demonstrate how condensation can use thermodynamic specificity to perform an acute response to multiple, stresses, a potentially general mechanism for stress-responsive proteins.

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. All rights reserved. No reuse allowed without permission.
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Posted September 21, 2022.
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Sequential Activation and Local Unfolding Control Poly(A)-Binding Protein Condensation
Ruofan Chen, Darren Kahan, Julia Shangguan, Joseph R. Sachleben, Joshua A. Riback, D. Allan Drummond, Tobin R. Sosnick
bioRxiv 2022.09.21.508844; doi: https://doi.org/10.1101/2022.09.21.508844
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Sequential Activation and Local Unfolding Control Poly(A)-Binding Protein Condensation
Ruofan Chen, Darren Kahan, Julia Shangguan, Joseph R. Sachleben, Joshua A. Riback, D. Allan Drummond, Tobin R. Sosnick
bioRxiv 2022.09.21.508844; doi: https://doi.org/10.1101/2022.09.21.508844

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