Optogenetic Evidence for the Intrinsic Phase Separation Propensity of the Sgs1 N-Terminal Region: Implications for Assemblysome Formation

Assemblysomes are ribosome-nascent chain condensates that regulate co-translational processes through liquid–liquid phase separation, yet the sequence determinants underlying their formation remain incompletely understood. Previous studies identified the DNA helicase Sgs1 as an assemblysome-associated protein; however, whether its N-terminal region possesses intrinsic phase separation propensity has not been experimentally examined. Here, we investigated the first 135 amino acids of Sgs1 using a light-inducible optoDroplet assay. A mCherry–Cry2–Sgs11–135 fusion construct was compared with the established positive control FUS–mCherry–Cry2 and the negative control mCherry–Cry2 in live HEK293T cells. Following blue-light activation, Sgs11–135 reproducibly formed reversible condensates, indicating intrinsic phase separation propensity. Quantitative image analysis revealed light-dependent increases in condensate number, average condensate area, and integrated condensate fluorescence intensity. Compared with FUS, Sgs11–135 formed slightly fewer and smaller condensates but displayed reproducible light-dependent condensate formation. These findings indicate that the Sgs1 N-terminal region exhibits intrinsic phase separation propensity in a validated optogenetic assay. Although this proof-of-principle study does not establish the molecular mechanism of assemblysome formation, the results are consistent with the hypothesis that the Sgs1 N-terminus may contribute to the multivalent interactions underlying assemblysome organization.

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Journal
Biomolecules
Published
2026-08-27
DOI
https://doi.org/10.3390/biom16091240
Primary Topic
RNA Research and Splicing
Type
article
Field-Weighted Citation Impact
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article

Optogenetic Evidence for the Intrinsic Phase Separation Propensity of the Sgs1 N-Terminal Region: Implications for Assemblysome Formation

Viktor Honti, Erika Gábor, Zoltán Villányi, Orsolya Németh‐Szatmári et al.
Biomolecules
RNA Research and Splicing
article

Optogenetic Evidence for the Intrinsic Phase Separation Propensity of the Sgs1 N-Terminal Region: Implications for Assemblysome Formation

Viktor Honti, Erika Gábor, Zoltán Villányi, Orsolya Németh‐Szatmári, Ferenc Jankovics, Bence György Gombás
article en

Abstract

Assemblysomes are ribosome-nascent chain condensates that regulate co-translational processes through liquid–liquid phase separation, yet the sequence determinants underlying their formation remain incompletely understood. Previous studies identified the DNA helicase Sgs1 as an assemblysome-associated protein; however, whether its N-terminal region possesses intrinsic phase separation propensity has not been experimentally examined. Here, we investigated the first 135 amino acids of Sgs1 using a light-inducible optoDroplet assay. A mCherry–Cry2–Sgs11–135 fusion construct was compared with the established positive control FUS–mCherry–Cry2 and the negative control mCherry–Cry2 in live HEK293T cells. Following blue-light activation, Sgs11–135 reproducibly formed reversible condensates, indicating intrinsic phase separation propensity. Quantitative image analysis revealed light-dependent increases in condensate number, average condensate area, and integrated condensate fluorescence intensity. Compared with FUS, Sgs11–135 formed slightly fewer and smaller condensates but displayed reproducible light-dependent condensate formation. These findings indicate that the Sgs1 N-terminal region exhibits intrinsic phase separation propensity in a validated optogenetic assay. Although this proof-of-principle study does not establish the molecular mechanism of assemblysome formation, the results are consistent with the hypothesis that the Sgs1 N-terminus may contribute to the multivalent interactions underlying assemblysome organization.

BiomoleculesVol. 16(9)
University of Szeged (HU), HUN-REN Szegedi Biológiai Kutatóközpont (HU)
Szegedi Tudományegyetem, National Research, Development and Innovation Office
Openalex Percentile: Top 17%
RNA Research and Splicing
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