Concentration buffering and noise reduction in non-equilibrium phase-separating systems.

Cell systems Pub Date : 2025-02-19 Epub Date: 2025-02-07 DOI:10.1016/j.cels.2025.101168
Christoph Zechner, Frank Jülicher
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Abstract

Biomolecular condensates have been proposed to buffer intracellular concentrations and reduce noise. However, concentrations need not be buffered in multicomponent systems, leading to a non-constant saturation concentration (csat) when individual components are varied. Simplified equilibrium considerations suggest that noise reduction might be closely related to concentration buffering and that a fixed saturation concentration is required for noise reduction to be effective. Here, we present a theoretical analysis to demonstrate that these suggestions do not apply to mesoscopic fluctuating systems. We show that concentration buffering and noise reduction are distinct concepts, which cannot be used interchangeably. We further demonstrate that concentration buffering and a constant csat are neither necessary nor sufficient for noise reduction to be effective. Clarity about these concepts is important for studying the role of condensates in controlling cellular noise and for the interpretation of concentration relationships in cells. A record of this paper's transparent peer review process is included in the supplemental information.

非平衡相分离系统的浓度缓冲与降噪。
生物分子凝聚物已被提出缓冲细胞内浓度和降低噪音。然而,在多组分系统中,浓度不需要缓冲,当单个组分变化时,会导致非恒定饱和浓度(csat)。简化的平衡考虑表明,降噪可能与浓度缓冲密切相关,并且需要固定的饱和浓度才能有效降噪。在这里,我们提出一个理论分析来证明这些建议并不适用于介观波动系统。我们表明,浓度缓冲和降噪是不同的概念,不能互换使用。我们进一步证明,浓度缓冲和恒定的csat既不是降噪的必要条件,也不是降噪的充分条件。澄清这些概念对于研究凝析物在控制细胞噪声中的作用以及解释细胞内浓度关系具有重要意义。本文的透明同行评议过程记录包含在补充信息中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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