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February 21, 2026Biophysical Journal0 citations

BPS2026 – Disordered proteins: From single chain to condensate formation

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TMTatiana I. Morozova

Key Points

  • This research aims to explore the phase separation of disordered proteins and their implications for biomolecular condensate formation.
  • Used atomistic modeling to analyze conformational properties of tropoelastin and elastin-like polypeptides.
  • Investigated the behavior of disordered proteins across different regions of their free-energy landscape.
  • Demonstrated how the sequence length modulates properties at a single chain level.
  • Found that phase separation influences the assembly of the extracellular matrix via tropoelastin.
  • Identified different aggregate states for elastin based on molecular interactions.
  • Showed that proteins can behave differently based on their free-energy landscape, as seen with beta-casein.

Abstract

The phase separation of disordered proteins resulting in the formation of biomolecular condensates has received significant attention due to its fundamental role in cellular organization and functioning, and is sought after in many applications. For instance, the liquid-liquid phase separation of tropoelastin initiates the hierarchical assembly of elastic fibers—key components of the extracellular matrix providing resilience and elasticity to biological tissues. Inspired by the hydrophobic domains (HDs) of tropoelastin, elastin-like polypeptides (ELPs) were derived, exhibiting a similar phase behavior. Employing state-of-the-art atomistic modeling, I will demonstrate the importance of the sequence length as a modulator of conformational properties at a single chain level, manifesting in different aggregate states of elastin condensates. Next, I will show that disordered proteins can behave as entirely different polymers, i.e., coils and globules, in different regions of their free-energy landscape, using beta-casein as an example. Finally, I will discuss how to reach large-scale assemblies of IDPs by employing the Martini force field.

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Cite This Study

Tatiana I. Morozova (2026) studied this question.

synapsesocial.com/papers/69990df65b97ab4c14ac2cc8https://doi.org/10.1016/j.bpj.2025.11.244
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