Programmable DNA protonuclei reveal environmental context on protein phase separation

Abstract Understanding protein phase separation in cellular environments remains a major challenge, as ex vivo assays often fail to capture the influence of environmental context – such as crowding, multimodal interactions, and the dynamic properties of the cytosol or nucleus. Here, we introduce programmable DNA-based protonuclei (PN) as nucleus-inspired compartments to probe phase separation of the neurodegeneration-linked protein FUS. We show that FUS partitioning and condensate formation are highly sensitive to nucleic acid sequence, spatial confinement, and viscoelastic properties of the PN core. Notably, classical test-tube affinity assays fail to predict protein behavior within the crowded and multivalent PN environment. By tuning DNA crosslinking, we modulate condensate dynamics and suppress liquid-to-solid transitions of FUS – a hallmark of disease. These findings demonstrate that multivalent, confined environments fundamentally reshape protein-nucleic acid interactions and phase behavior. The PN platform complements test-tube assays and complex cellular settings and enables to dissect nuclear condensates under controllable conditions.

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Publication Details

Journal
Nature Communications
Published
2026-09-30
DOI
https://doi.org/10.1038/s41467-026-78144-1
Primary Topic
RNA Research and Splicing
Type
article
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article

Programmable DNA protonuclei reveal environmental context on protein phase separation

Erin L. Sternburg, Andreas Walther, Jasper J. Michels, Lukas S. Stelzl et al.
Nature Communications
RNA Research and Splicing
article

Programmable DNA protonuclei reveal environmental context on protein phase separation

Erin L. Sternburg, Andreas Walther, Jasper J. Michels, Lukas S. Stelzl, Antonia Preuss, Dorothee Dormann, Avik Samanta, Nele S. Kuhr, Johann Fritzen
article en

Abstract

Abstract Understanding protein phase separation in cellular environments remains a major challenge, as ex vivo assays often fail to capture the influence of environmental context – such as crowding, multimodal interactions, and the dynamic properties of the cytosol or nucleus. Here, we introduce programmable DNA-based protonuclei (PN) as nucleus-inspired compartments to probe phase separation of the neurodegeneration-linked protein FUS. We show that FUS partitioning and condensate formation are highly sensitive to nucleic acid sequence, spatial confinement, and viscoelastic properties of the PN core. Notably, classical test-tube affinity assays fail to predict protein behavior within the crowded and multivalent PN environment. By tuning DNA crosslinking, we modulate condensate dynamics and suppress liquid-to-solid transitions of FUS – a hallmark of disease. These findings demonstrate that multivalent, confined environments fundamentally reshape protein-nucleic acid interactions and phase behavior. The PN platform complements test-tube assays and complex cellular settings and enables to dissect nuclear condensates under controllable conditions.

Nature CommunicationsVol. 17(1)
Indian Institute of Technology Kharagpur (IN), Johannes Gutenberg University Mainz (DE), University Medical Center of the Johannes Gutenberg University Mainz (DE), Max Planck Institute for Polymer Research (DE), Institute of Molecular Biology (DE)
Life in Land
Openalex Percentile: Top 20%
RNA Research and Splicing
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