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生物分子凝聚物中的局部环境可在不同长度尺度上调节酶的活性。

Local environment in biomolecular condensates modulates enzymatic activity across length scales.

机构信息

Department of Chemistry and Applied Biosciences, Institute for Chemical and Bioengineering, ETH Zurich, Zurich, Switzerland.

Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern, Bern, Switzerland.

出版信息

Nat Commun. 2024 Apr 18;15(1):3322. doi: 10.1038/s41467-024-47435-w.

Abstract

The mechanisms that underlie the regulation of enzymatic reactions by biomolecular condensates and how they scale with compartment size remain poorly understood. Here we use intrinsically disordered domains as building blocks to generate programmable enzymatic condensates of NADH-oxidase (NOX) with different sizes spanning from nanometers to microns. These disordered domains, derived from three distinct RNA-binding proteins, each possessing different net charge, result in the formation of condensates characterized by a comparable high local concentration of the enzyme yet within distinct environments. We show that only condensates with the highest recruitment of substrate and cofactor exhibit an increase in enzymatic activity. Notably, we observe an enhancement in enzymatic rate across a wide range of condensate sizes, from nanometers to microns, indicating that emergent properties of condensates can arise within assemblies as small as nanometers. Furthermore, we show a larger rate enhancement in smaller condensates. Our findings demonstrate the ability of condensates to modulate enzymatic reactions by creating distinct effective solvent environments compared to the surrounding solution, with implications for the design of protein-based heterogeneous biocatalysts.

摘要

生物分子凝聚物调控酶反应的机制及其与隔室大小的关系仍知之甚少。在这里,我们使用无规卷曲结构域作为构建块,生成了具有不同大小的 NADH 氧化酶(NOX)可编程酶凝聚物,大小从纳米到微米不等。这些无规卷曲结构域来自三种不同的 RNA 结合蛋白,每个蛋白的净电荷都不同,导致形成的凝聚物具有可比的高局部酶浓度,但处于不同的环境中。我们表明,只有具有最高底物和辅因子募集的凝聚物才表现出酶活性的增加。值得注意的是,我们观察到酶活性在从纳米到微米的凝聚物大小范围内都有显著提高,这表明凝聚物的涌现特性可以在纳米级的组装体中产生。此外,我们还发现较小的凝聚物具有更大的速率增强。我们的研究结果表明,凝聚物能够通过创造与周围溶液相比具有不同有效溶剂环境来调节酶反应,这对基于蛋白质的异质生物催化剂的设计具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/145b/11026464/23e6c06e6e77/41467_2024_47435_Fig1_HTML.jpg

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