Coacervate-Droplet Cased Synthetic Cells Regulated By Activated Carboxylic Acids (ACAs)

IF 3.1 Q2 CHEMISTRY, MULTIDISCIPLINARY
Matteo Valentini, Stefano Di Stefano, Job Boekhoven
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Abstract

Regulating the formation and dissolution of active complex coacervate droplets with chemical reactions offers a powerful synthetic cell model. Such active droplets are also helpful in understanding the non-equilibrium nature of membrane-less organelles. Like many membrane-less organelles, these droplets rely on high-chemical potential reagents, like ATP, to maintain their transient nature. This study explores Activated Carboxylic Acids (ACAs) as a high-chemical potential fuel to modulate the lifetime of peptide-based coacervates through transient pH changes. We demonstrate that nitroacetic acid, a commonly used ACA, can effectively induce the formation and dissolution of coacervates by transiently altering the solution′s pH. The system, comprising the zwitterionic peptide Ac-FRGRGD-OH and polyanions, forms coacervates upon protonation at low pH and dissolves as the pH returns to neutral. Our findings indicate that the lifetime of these synthetic cells can be fine-tuned by varying the amount of ACA added, and the system can be refueled multiple times without significant interference from by-products. This ACA-driven reaction cycle is versatile, accommodating various coacervate compositions and enabling the uptake of diverse compounds, making it a valuable model for compartmentalization. The study underscores the potential of ACA-fueled coacervates as a platform for investigating biomolecular condensates and developing synthetic life systems.

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活化羧酸(ACAs)调控的凝聚体-液滴壳状合成细胞
通过化学反应调节活性络合物凝聚液滴的形成和溶解提供了一个强大的合成细胞模型。这种活性液滴也有助于理解无膜细胞器的非平衡性质。像许多无膜细胞器一样,这些液滴依靠高化学势的试剂,如ATP,来维持它们的瞬态性质。本研究探讨了活化羧酸(Activated Carboxylic Acids, ACAs)作为一种高化学势燃料,通过短暂的pH变化来调节肽基凝聚物的寿命。我们证明了硝基乙酸,一种常用的ACA,可以通过短暂改变溶液的pH值来有效地诱导凝聚体的形成和溶解。该体系由两性离子肽Ac-FRGRGD-OH和多阴离子组成,在低pH值下质子化形成凝聚体,并在pH值恢复到中性时溶解。我们的研究结果表明,这些合成细胞的寿命可以通过改变ACA的添加量来微调,并且系统可以多次加油而不会受到副产物的明显干扰。这种由aca驱动的反应循环是通用的,可容纳各种凝聚体组成,并能吸收各种化合物,使其成为一种有价值的区室化模型。这项研究强调了aca燃料凝聚体作为研究生物分子凝聚体和开发合成生命系统的平台的潜力。
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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CiteScore
7.00
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