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生物分子凝聚物中的独特化学环境。

Distinct chemical environments in biomolecular condensates.

机构信息

Whitehead Institute for Biomedical Research, Cambridge, MA, USA.

Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge, MA, USA.

出版信息

Nat Chem Biol. 2024 Mar;20(3):291-301. doi: 10.1038/s41589-023-01432-0. Epub 2023 Sep 28.

Abstract

Diverse mechanisms have been described for selective enrichment of biomolecules in membrane-bound organelles, but less is known about mechanisms by which molecules are selectively incorporated into biomolecular assemblies such as condensates that lack surrounding membranes. The chemical environments within condensates may differ from those outside these bodies, and if these differed among various types of condensate, then the different solvation environments would provide a mechanism for selective distribution among these intracellular bodies. Here we use small molecule probes to show that different condensates have distinct chemical solvating properties and that selective partitioning of probes in condensates can be predicted with deep learning approaches. Our results demonstrate that different condensates harbor distinct chemical environments that influence the distribution of molecules, show that clues to condensate chemical grammar can be ascertained by machine learning and suggest approaches to facilitate development of small molecule therapeutics with optimal subcellular distribution and therapeutic benefit.

摘要

多种机制已被描述用于选择性地富集膜结合细胞器中的生物分子,但对于分子如何被选择性地纳入生物分子组装体(如缺乏周围膜的凝聚物)的机制知之甚少。凝聚物内的化学环境可能与这些体外部的化学环境不同,如果这些环境在不同类型的凝聚物之间有所不同,那么不同的溶剂化环境将为这些细胞内体之间的选择性分布提供一种机制。在这里,我们使用小分子探针表明,不同的凝聚物具有不同的化学溶剂化性质,并且可以通过深度学习方法预测探针在凝聚物中的选择性分配。我们的结果表明,不同的凝聚物具有不同的化学环境,影响分子的分布,表明可以通过机器学习确定凝聚物化学语法的线索,并提出了一些方法来促进具有最佳亚细胞分布和治疗效果的小分子治疗药物的开发。

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