Quantitative Model of Transcriptional Noise Regulation by mRNA Condensates

Abstract A fundamental biological process of transcription occurs in the cell nucleus, which is a complex medium that also contains multiple heterogeneous structures known as biomolecular condensates. Interestingly, some of these condensates contain mRNA molecules in addition to proteins, suggesting an important cellular role in transcription that is not yet well understood. In this work, we develop a minimal theoretical framework for quantitative investigation of the role of reversible mRNA condensation in transcription. Our discrete-state stochastic approach accounts for the most relevant processes, allowing us to explicitly evaluate the properties of the system and clarify the effects of condensation. Analytical calculations supported by computer simulations suggest that reversible mRNA condensation influences the transcription processes by maintaining a constant level of free mRNA in the nucleoplasm while lowering the degree of stochastic noise and increasing the robustness against external perturbations. Physicochemical arguments are presented to explain these observations. The proposed theoretical framework elucidates important microscopic aspects of transcription, providing a convenient quantitative tool for investigating complex biological phenomena.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-14
DOI
https://doi.org/10.1021/acs.jpclett.6c02757
Primary Topic
Gene Regulatory Network Analysis
Type
article
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article

Quantitative Model of Transcriptional Noise Regulation by mRNA Condensates

Anatoly B. Kolomeisky, Andreas Lanitis
The Journal of Physical Chemistry Letters
Gene Regulatory Network Analysis
article

Quantitative Model of Transcriptional Noise Regulation by mRNA Condensates

Anatoly B. Kolomeisky, Andreas Lanitis
article en

Abstract

Abstract A fundamental biological process of transcription occurs in the cell nucleus, which is a complex medium that also contains multiple heterogeneous structures known as biomolecular condensates. Interestingly, some of these condensates contain mRNA molecules in addition to proteins, suggesting an important cellular role in transcription that is not yet well understood. In this work, we develop a minimal theoretical framework for quantitative investigation of the role of reversible mRNA condensation in transcription. Our discrete-state stochastic approach accounts for the most relevant processes, allowing us to explicitly evaluate the properties of the system and clarify the effects of condensation. Analytical calculations supported by computer simulations suggest that reversible mRNA condensation influences the transcription processes by maintaining a constant level of free mRNA in the nucleoplasm while lowering the degree of stochastic noise and increasing the robustness against external perturbations. Physicochemical arguments are presented to explain these observations. The proposed theoretical framework elucidates important microscopic aspects of transcription, providing a convenient quantitative tool for investigating complex biological phenomena.

The Journal of Physical Chemistry Letters
Rice University (US)
Openalex Percentile: Top 18%
Gene Regulatory Network Analysis
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Quantitative Model of Transcriptional Noise Regulation by mRNA Condensates — Anatoly B. Kolomeisky, Andreas Lanitis · The Journal of Physical Chemistry Letters (2026) | TGRS Research Map | TGRS