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Molecular origins of heterogeneous aging and spatial organization in RNA condensates

Created on 28 Aug 2026

Authors

Mohanta, D., Zhang, H., Thirumalai, D., Nguyen, H. T.

Abstract

The molecular origins of aging of biomolecular condensates, which play a central role in cellular organization, is poorly understood. Here, we use coarse-grained molecular simulations to investigate how RNA sequence and chain connectivity govern condensate aging over extended timescales. Condensates formed by CAG-repeat RNA undergo pronounced aging characterized by progressive dynamical slowing, loss of ergodicity, and the emergence of two distinct relaxation timescales. Aging proceeds heterogeneously in space, giving rise to a dynamically arrested, solid-like core surrounded by a more fluid shell. We demonstrate that aging is driven by sequence-encoded base pairing that favors RNA expansion, alignment and the formation of a dense interchain interaction network. These structural changes lead to increased topological entanglement, stabilizing long-lived conformations and reinforcing dynamic arrest in the condensate interior. Strikingly, a scrambled sequence with identical composition remains largely liquid-like. Our results establish RNA sequence patterning as a key determinant not only of phase separation but also of condensate aging and spatial organization. These findings provide a molecular framework for understanding the persistence and solidification of repeat RNA assemblies observed in diseases and suggest general physical principles by which entangled polymer networks drive aging in biomolecular condensates.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 28 Aug 2026.

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