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April 12, 2026Biomolecules0 citationsOpen Access

Condensate State as Determinant of Amyloid Pathology in Neurodegeneration

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LLLathan LucasJFJosephine C. FerreonAFAllan Chris M. Ferreon

Key Points

  • This research aims to understand how condensate states impact amyloid pathology in neurodegenerative diseases.
  • Comparison of six disease-linked proteins: Tau, ⍺-synuclein, amyloid-β, TDP-43, FUS, and hnRNPA1.
  • Examination of sequence-encoded interaction motifs and cellular cofactors affecting protein aggregation.
  • Analysis of how interfacial microenvironments influence condensate and amyloid formation.
  • Identified key drivers of aggregation from physiological condensates to pathological amyloids.
  • Showed that condensates can buffer aggregation but may also transition to gel-like states that promote harmful oligomers.
  • Highlighted intervention points that can help maintain protein function and limit toxic amyloid development.

Abstract

Neurodegenerative diseases arise when normally functional aggregation-prone proteins transition into stable cross-β amyloid fibrils. Although these fibrils share a conserved architecture, the pathways that lead to fibrillation vary across proteins and cellular environments. Liquid–liquid phase separation is now recognized as a central organizer of intracellular biochemistry that modulates protein aggregation. Physiological condensation can buffer aggregation by maintaining macromolecular solubility and providing partner interactions that compete against pathological protein–protein interactions. However, condensates can transform and age into gel-like states that can favor the emergence of β-rich oligomers and solid-state fibrils. Across six disease-linked proteins that include Tau, ⍺-synuclein, amyloid-β, TDP-43, FUS, and hnRNPA1, we compare how sequence-encoded interaction motifs, cellular cofactors, and interfacial microenvironments shape the balance between physiological condensates and pathological amyloids. Here, we highlight the unifying drivers of aggregation and intervention points that preserve native function while limiting toxic amyloid formation.

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Cite This Study

Lucas et al. (2026) studied this question.

synapsesocial.com/papers/69db37404fe01fead37c5453https://doi.org/10.3390/biom16040560
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