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Janvier, S.

Publications and source records attributed to Janvier, S..

3 recordsLinked to original sources

Challenges in reconstituting the peroxiredoxin 2:STAT3 transient redox-relay complex in vitro

Peroxiredoxin 2 (Prdx2) mediates redox signaling by transferring oxidative equivalents to target proteins such as STAT3, a redox-sensitive transcription factor implicated in inflammation and cancer. Although this interaction has been demonstrated in cells, reconstituting the Prdx2:STAT3 complex in vitro remains challenging due to its transient and redox-dependent nature. Here we test various conditions to stabilize the complex between taggless Prdx2 and the core fragment of STAT3 (CF-STAT3), including oxidants, detergents, the facilitator Annexin A2, anaerobic environments, and CovalX crosslinking. Complex formation was assessed via mass photometry, analytical size-exclusion chromatography (SEC), SEC-MALS, and electron microscopy (EM). No stable complex was observed under standard conditions. Anaerobic environments briefly stabilized the interaction, but cryo-EM could not resolve the structure. CovalX crosslinking yielded short-lived but homogeneous complexes. We found that Prdx2 is highly susceptible to hyperoxidation at its peroxidatic cysteine, particularly in the presence of DTT or excess H2O2, resulting in loss of function. Maintaining non-reducing conditions during purification preserved Prdx2 in an oxidation-competent state, promoting formation of the disulfide bond between the peroxidatic and resolving cysteines and thereby enabling reproducible detection of a weak complex with CF-STAT3. Our findings establish a framework for studying redox-relay protein complexes in vitro and highlight the importance of oxidation state management during protein handling.

molecular biology↗

Expression and Purification of Full-Length hnRNPA2B1 for Biophysical Characterization of Liquid-Liquid Phase Separation

Heterogeneous nuclear ribonucleoprotein A2/B1 (hnRNPA2B1) is a multifunctional RNA-binding protein involved in RNA maturation and mRNA transport. It has recently been shown to undergo liquid-liquid phase separation (LLPS), contributing to the assembly of membraneless organelles. Moreover, dysregulation of LLPS is associated with the formation of pathogenic protein aggregates, in which hnRNPA2B1 is frequently found. Despite its biological and pathological relevance, studies on the full-length protein remain limited due to its intrinsically disordered, low-complexity domain, which renders hnRNPA2B1 highly aggregation-prone and difficult to purify. In this study, we report the successful expression and purification of full-length hnRNPA2B1 with high purity and minimal nucleic acid contamination. By optimizing buffer conditions, specifically ionic strength and pH, we maintain the protein in solution following cleavage of its solubility tag. Preliminary in vitro characterization under near-physiological conditions reveals that purified hnRNPA2B1 undergoes LLPS, forming dynamic liquid-like droplets that grow and mature into amorphous aggregates. Our approach provides a robust method for purifying hnRNPA2B1 suitable for LLPS and aggregation studies. This strategy may also be useful to purify other aggregation-prone, intrinsically disordered proteins.

biochemistry↗

Heterooligomerization drives structural plasticity of eukaryotic peroxiredoxins

Peroxiredoxins are highly conserved thiol peroxidases essential for peroxide detoxification, redox signaling, and chaperone activity. Prx1/AhpC-type peroxiredoxins are found throughout the eukaryotic kingdom, where multiple isoforms frequently coexist within the same cell and even in the same subcellular compartment. Long thought to form exclusively homooligomeric structures, we reveal that heterooligomerization is a conserved and important feature of eukaryotic Prx1/AhpC-type peroxiredoxins. We demonstrate that heterooligomer formation modulates peroxoredoxin oligomeric state and enhances structural stability. In yeast, Tsa1-Tsa2 peroxiredoxin heterodecamers form in response to oxidative stress and incorporated Tsa2 stabilizes the decameric state. Beyond yeast, we show that human PRDX1 and PRDX2, as well as plant and parasitic peroxiredoxins, engage in functional heterooligomerization. These findings challenge the long-held paradigm of peroxiredoxin homooligomerization and reveal a novel mechanism for regulating redox homeostasis. Our study provides new insights into peroxiredoxin structural plasticity with broad implications for redox biology, stress responses, and cellular adaptation.

biochemistry↗