Accelerated Ostwald ripening by chemical activity.

ArXiv Pub Date : 2025-09-05
Benjamin Sorkin, Ned S Wingreen
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Abstract

Phase separation of biomolecular condensates promotes membrane-free compartmentalization in cells. The dynamics of these biocondensates is routinely regulated by energy-consuming processes. Here, we devise a theory pinpointing how active chemical reactions, interconverting molecules between phase-separating and inert forms, can drive faster condensate coarsening. We find that mass conservation limits droplet volume growth to being linear in time regardless of activity, resembling the passive Lifshitz-Slyozov law. However, if reactions are restricted to occur only outside droplets, the rate of Ostwald ripening can be increased by an arbitrarily large factor. Our theory is quantitatively supported by recent experiments on ripening in the presence of fueled interconversion reactions, under precisely the predicted conditions. We posit that the ability to induce rapid biocondensate coarsening can be advantageous in synthetic-biological contexts, e.g., as a regulator of metabolic channeling.

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化学活性加速奥斯特瓦尔德成熟。
生物分子凝聚物的相分离在活细胞中普遍存在,促进酶及其底物的共定位,并实现无膜区隔化。能量消耗过程通常用于调节生物凝析物的生长,通过反对向粗化的热力学趋势。与此同时,细胞通常利用能量来加速热力学过程。在这里,我们从理论上探讨了利用化学反应加速生物凝析油粗化的可能性。我们将Lifshitz-Slyozov理论与反应扩散方法结合起来,其中粒子在相分离形式和惰性形式之间相互转换。我们发现,尽管有活性,质量守恒限制了体积增长在时间上是线性的(如在被动情况下),尽管如果反应仅限于发生在液滴外,奥斯特瓦尔德成熟的速度可以通过任意大的因子增加。我们的加速理论在定量上得到了最近的实验的支持,这些实验是在精确预测的条件下,在燃料相互转化反应的存在下成熟的。我们假设,诱导快速生物凝聚粗化的能力在合成生物学背景下作为代谢通道的调节剂是有利的。
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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