Deciphering the chemical grammar of protein-RNA condensates

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Hauptverfasser: Grassmann, Greta, Ruocco, Giancarlo, Miotto, Mattia
Format: Preprint
Veröffentlicht: 2026
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author Grassmann, Greta
Ruocco, Giancarlo
Miotto, Mattia
author_facet Grassmann, Greta
Ruocco, Giancarlo
Miotto, Mattia
contents Biomolecular phase separation is typically attributed to the polymer physics of long, disordered chains. However, the underlying chemical grammar, i.e. the specific interactions between protein and RNA building blocks, remains poorly understood. We decouple those effects by screening the phase behavior of the complete dipeptide library in presence and absence of nucleic acids using full-atomistic molecular dynamics simulations. We demonstrate that (i) even these ultrashort units encode the instructions for spontaneous condensation, proving that phase separation is fundamentally rooted at a sub-polymeric level. (ii) Nucleic acids do not act as generic anionic glue but exert instead a base-specific regulatory logic. (iii) Individual nucleobases function as chemical tuners that dissolve, stabilize, or fluidize condensates based on their molecular identity. Overall, our minimal framework reveals that while polymer length enhances assembly, the core properties and regulatory control of condensates may be also governed by a fine-tuned chemical alphabet of peptides and nucleobases.
format Preprint
id arxiv_https___arxiv_org_abs_2604_16899
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Deciphering the chemical grammar of protein-RNA condensates
Grassmann, Greta
Ruocco, Giancarlo
Miotto, Mattia
Biological Physics
Biomolecular phase separation is typically attributed to the polymer physics of long, disordered chains. However, the underlying chemical grammar, i.e. the specific interactions between protein and RNA building blocks, remains poorly understood. We decouple those effects by screening the phase behavior of the complete dipeptide library in presence and absence of nucleic acids using full-atomistic molecular dynamics simulations. We demonstrate that (i) even these ultrashort units encode the instructions for spontaneous condensation, proving that phase separation is fundamentally rooted at a sub-polymeric level. (ii) Nucleic acids do not act as generic anionic glue but exert instead a base-specific regulatory logic. (iii) Individual nucleobases function as chemical tuners that dissolve, stabilize, or fluidize condensates based on their molecular identity. Overall, our minimal framework reveals that while polymer length enhances assembly, the core properties and regulatory control of condensates may be also governed by a fine-tuned chemical alphabet of peptides and nucleobases.
title Deciphering the chemical grammar of protein-RNA condensates
topic Biological Physics
url https://arxiv.org/abs/2604.16899