Skip to content
Open access

Mimicking two posttranslational modifications associated with oxidative stress affords phase separation of vimentin

Aug 2026 · bioRxiv · 0 citations · 84 references
Biology

TL;DR

This work aimed to generate vimentin condensates by inserting mutations mimicking posttranslational modifications associated with oxidative stress by introducing phosphomimetic residues at certain single vimentin glycosylation and/or phosphorylation sites, and suggested a modulatory role of glycosylation/phosphorylation in this effect.

Abstract

Biomolecular condensates are membraneless compartments critical for the functional organization of cellular macromolecules in essential processes such as cell division, gene transcription or stress responses. We previously reported that vimentin filaments remodel into phase separated biomolecular condensates upon oxidative stress. This process requires vimentin single cysteine, C328, suggesting the involvement of oxidative modifications of this residue. Here, we aimed to generate vimentin condensates by inserting mutations mimicking posttranslational modifications associated with oxidative stress. In vimentin deficient cells, a cysteine oxidation mimetic mutant, vimentin C328D, formed only elongated particles or short filaments that evolved towards droplets upon serum deprivation or treatment with the oxidant diamide. Among vimentin posttranslational modifications rapidly responding to these stimuli, glycosylation confers filament stability whereas phosphorylation promotes disassembly. We observed that the O-deglycosylation inhibitor thiamet G, and the kinase inhibitors staurosporine and H-89, attenuated diamide-elicited vimentin C328D droplet formation, suggesting a potential glycosylation/phosphorylation interplay in this effect. Indeed, introducing phosphomimetic residues at certain single vimentin glycosylation and/or phosphorylation sites induced the formation of droplets, only if combined with the C328D mutation. In particular, the vimentin S49D,C328D mutant formed condensates that were reversibly dispersed by dilution through hypotonic shock. Therefore, mimicking C328 oxidation and S49 phosphorylation was sufficient to elicit vimentin phase separation. In vitro, purified vimentin S49D,C328D polymerized into a mixture of aberrant filaments and aggregates, which, in the presence of crowders, evolved towards paracrystals or clusters of beaded assemblies depending on pH. These findings highlight the role of C328 perturbations in the formation of biomolecular condensates and suggest a modulatory role of glycosylation/phosphorylation, thus shedding light on the processes regulating vimentin phase separation.

Read PDF

Similar papers

Open access Aug 2026

Vimentin remodeling in response to oxidants and electrophiles is modulated by pH

Vimentin is critical for cell mechanosensing, cytoskeletal cross-talk, and stress responses and is finely tuned by posttranslational modifications. Vimentin single cysteine, C328, is a modification hotspot, essential for filament remodeling by oxidants and electrophiles. With a pKa near physiological pH, C328 reactivit...

Alma E. Martínez, Paula Martínez-Cenalmor, Patricia González-Jiménez et al. · 1 citation
Open access Sep 2026

Dynamic Filament Assembly Regulates the Prolyl Aminopeptidase Activity of Plant Immune Protein DM3

It is shown that DM3 reversibly assembles into higher-order filaments in a salt-sensitive manner, which reveals how structural plasticity in protein assemblies enables a single protein to coordinate multiple stress-response functions, highlighting a general mechanism for regulating protein activity in plants.

Nayun Kim, Wei-Lin Wan, Yi-Yun Tan et al. · 0 citations
#protein folding Open access Sep 2026

N6-Methyladenosine RNA Modifications Influence the Stability of FUS-Dependent Biological Condensate Formation

Findings indicate that while protein–protein interactions may initiate LLPS, m6A-modulated RNA–protein interactions govern condensate growth and stability, and provide a mechanistic insight into how epitranscriptomic modifications regulate biomolecular condensation and influence cellular organization, gene regulation,...

Chamali Thalagaha Mudiyanselage, Milan Pandey, Sudeshi M. Abedeera et al. · 0 citations
Open access Sep 2026

Tracking cellular biomolecular condensate dynamics under proteostatic stress with middle-down phosphoproteomics

Coordination of biological function requires the partition of cellular components including into biomolecular condensates, but an overall landscape of how protein compartmentalize into higher-order assemblies under stress is still emerging. We apply proteome-wide solubility profiling to compare the compositions of NP-4...

Boomathi Pandi, Dominic C. M. Ng, Peyton Schaal et al. · 0 citations
Review Open access Sep 2026

Orchestrating Stress Granule Dynamics by SUMOylation: A New Frontier in Treating Stress-Induced Age-Related Diseases.

Stress granules (SGs), membrane-less organelles formed via liquid-liquid phase separation (LLPS), function as essential adaptive compartments that sequester mRNAs and proteins during acute stress. However, during chronic stress or aging, these dynamic condensates can undergo an irreversible phase transition into pathol...

Jia-Cheng Zhang, Han Hu, Yu-Tian Zhu et al. · 0 citations
Review 2025

An exquisite symphony: protein post-translational modifications govern mitochondrial fate

Ten key PTMs, including lactylation, succinylation, succinylation, SUMOylation, and S-nitrosylation, acting on core regulators such as dynamin-related protein 1(DRP1), optic atrophy 1 (OPA1), Parkin, and mitochondrial Rho GTPase 1 (MIRO1) are summarized to provide a comprehensive resource for understanding mitochondria...

Haolin Ding, E. Taoxia, Jing-Cai He et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.