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Liebau, Jobst ; Lazzaretti, Daniela ; Fürtges, Torben ; Bichler, Anna ; Pilsl, Michael ; Rudack, Till ; Sprangers, Remco

4D structural biology: quantitative dynamics in the eukaryotic RNA exosome complex

Liebau, Jobst, Lazzaretti, Daniela , Fürtges, Torben, Bichler, Anna, Pilsl, Michael, Rudack, Till and Sprangers, Remco (2025) 4D structural biology: quantitative dynamics in the eukaryotic RNA exosome complex. Nature Communications 16, p. 7896.

Date of publication of this fulltext: 28 Aug 2025 07:39
Article
DOI to cite this document: 10.5283/epub.77581

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Abstract

Molecular machines play pivotal roles in all biological processes. Most structural methods, however, are unable to directly probe molecular motions. Here, we demonstrate that dedicated NMR experiments can provide quantitative insights into functionally important dynamic regions in very large asymmetric protein complexes. We establish this for the 410 kDa eukaryotic RNA exosome complex that ...

Molecular machines play pivotal roles in all biological processes. Most structural methods, however, are unable to directly probe molecular motions. Here, we demonstrate that dedicated NMR experiments can provide quantitative insights into functionally important dynamic regions in very large asymmetric protein complexes. We establish this for the 410 kDa eukaryotic RNA exosome complex that contains ten distinct protein chains. Methyl-group and fluorine NMR experiments reveal site-specific interactions among subunits and with an RNA substrate. Furthermore, we extract quantitative insights into conformational changes within the complex in response to substrate and subunit binding for regions that are invisible in static cryo-EM and crystal structures. In particular, we identified a flexible plug region that can block an aberrant route of RNA towards the active site. Based on molecular dynamics simulations and NMR data we provide a model that shows how the flexible plug is structured in the open and closed conformations. Our work thus demonstrates that a combination of state-of-the-art structural biology methods can provide quantitative insights into large molecular machines that go significantly beyond the well-resolved and static images of biomolecular complexes, thereby adding the time domain into structural biology.



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Details

Item typeArticle
Journal or Publication TitleNature Communications
Title of Book:4D structural biology: quantitative dynamics in the eukaryotic RNA exosome complex
Publisher:Springer
Volume:16
Page Range:p. 7896
Date24 August 2025
InstitutionsBiology, Preclinical Medicine > Institut für Biophysik und physikalische Biochemie > Prof. Dr. Remco Sprangers
Biology, Preclinical Medicine > Institut für Biophysik und physikalische Biochemie > Prof. Dr. Till Rudack
Projects
Funded by: Deutsche Forschungsgemeinschaft (DFG) (453646862)
Identification Number
ValueType
10.1038/s41467-025-62982-6DOI
Keywordsprotein dynamics, RNA exosome, NMR spectroscopy, methyl-TROSY, 19F NMR, Molecular conformation; Molecular modelling; Solution-state NMR
Dewey Decimal Classification500 Science > 570 Life sciences
StatusPublished
RefereedYes, this version has been refereed
Created at the University of RegensburgYes
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-775819
Item ID77581

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