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Van der Eecken, R.

Publications and source records attributed to Van der Eecken, R..

2 recordsLinked to original sources

Disease-linked mutations in hnRNPA2B1 accelerate condensate maturation and promote amyloid aggregation

Heterogeneous nuclear ribonucleoprotein A2B1 (hnRNPA2B1) is a multifunctional RNA-binding protein that undergoes liquid-liquid phase separation (LLPS), contributing to the assembly of membraneless organelles across different cellular contexts. However, dysregulated phase separation can drive the transition from functional condensates to pathological protein aggregates. Two mutations in the low-complexity domain (LCD) of hnRNPA2B1 (D302V and P310L) have been linked to neurodegenerative diseases. How these mutations alter the interplay between LLPS and aggregation remains poorly understood. Here, we show that these disease-linked mutations accelerate condensate maturation and promote amyloid-like aggregation of hnRNPA2B1, with fibrils emerging from condensate-like cores. To dissect the mechanistic link between phase separation, aggregation, and disease, we focused on a conserved 25-amino-acid region within the LCD harboring both mutation sites. Deletion of this region markedly impairs LLPS and abolishes aggregation, revealing its contribution to both processes. Isolated peptides derived from this region have an intrinsic propensity for amyloid-like fibril formation, which is enhanced by the mutations. Although unable to phase separate, these peptides remodel condensate morphology and nucleate aggregation of the LCD. Together, our results identify a sequence-encoded mechanism linking disease-associated mutations to altered condensate behavior and amyloid aggregation, providing molecular insights into how aberrant phase transitions may contribute to hnRNPA2B1-associated disease.

biochemistry↗

DNA-binding and dimerization of the SOG1 NAC domain are functionally linked with its ability to undergo liquid-liquid phase separation

Liquid-liquid phase separation is a key phenomenon in the regulation of transcription in eukaryotes leading to the formation of so-called membraneless organelles. While transcription factors take part in several types of membrane-less organelles, it remains unclear how specific DNA binding, multivalent interactions with DNA/RNA and condensation are interlinked. Here we show that the NAC domain of SOG1 (SOG1NAC), a transcription factor that is central to the DNA damage response in plants, can undergo liquid-liquid phase separation in vitro in the presence of both RNA or double stranded DNA. This behaviour, as well as the ability of SOG1NAC to bind DNA in a sequence-specific manner are dependent on its potential to form homodimers and the presence of a cluster of positive charges in its DNA binding site. Short double-stranded DNA fragments containing the sequence motif that is specifically recognized by SOG1NAC inhibit RNA-mediated phase separation, suggesting overlapping binding sites for DNA and RNA. This may reflect a complex interplay between DNA and RNA binding that could control the formation of condensates at transcription sites.

biochemistry↗