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Martinez-Cenalmor, P.

Publications and source records attributed to Martinez-Cenalmor, P..

2 recordsLinked to original sources

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

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.

cell biology↗

Formation of vimentin biomolecular condensate-like structures under oxidative stress

The intermediate filament protein vimentin performs a key role in cytoskeletal interplay and dynamics, and in cellular responses to stress. The vimentin monomer possesses a central -helical rod domain flanked by N- and C-terminal low complexity domains. Interactions between this type of domains play an important function in the formation of phase-separated biomolecular condensates, which in turn are critical for the organization of cellular components. Vimentin filaments undergo distinct and versatile reorganizations in response to diverse stimuli. Here we show that certain oxidants and electrophiles, including hydrogen peroxide and diamide, elicit the remodeling of vimentin filaments into small particles. Diamide in particular, induces a fast conversion of filaments into circular, motile dots, for which the presence of the single vimentin cysteine residue, C328, is critical. This effect is reversible, and filament reassembly can be noticed within minutes of removal of the oxidant. Diamide-elicited structures can recover fluorescence after photobleaching. Moreover, fusion of cells expressing differentially tagged vimentin allows the detection of dots positive for both tags, suggesting that vimentin dots can merge upon cell fusion. The aliphatic alcohol 1,6-hexanediol, known to alter interactions between low complexity domains, readily dissolves diamide-elicited vimentin dots at low concentrations, whereas at high concentrations it disrupts vimentin filaments. Taken together, these results indicate that vimentin oxidation can promote a fast and reversible filament remodeling into biomolecular condensate-like structures. Moreover, we hypothesize that this reorganization into droplet-like structures could play a protective role against irreversible damage by oxidative stress.

cell biology↗