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利用具有大分子门的纳米级腔室在生理条件下稳定捕获多种蛋白质。

Stable trapping of multiple proteins at physiological conditions using nanoscale chambers with macromolecular gates.

机构信息

Department of Chemistry and Chemical Engineering, Chalmers University of Technology, 41296, Gothenburg, Sweden.

Biozentrum and the Swiss Nanoscience Institute, University of Basel, 4056, Basel, Switzerland.

出版信息

Nat Commun. 2023 Aug 23;14(1):5131. doi: 10.1038/s41467-023-40889-4.

Abstract

The possibility to detect and analyze single or few biological molecules is very important for understanding interactions and reaction mechanisms. Ideally, the molecules should be confined to a nanoscale volume so that the observation time by optical methods can be extended. However, it has proven difficult to develop reliable, non-invasive trapping techniques for biomolecules under physiological conditions. Here we present a platform for long-term tether-free (solution phase) trapping of proteins without exposing them to any field gradient forces. We show that a responsive polymer brush can make solid state nanopores switch between a fully open and a fully closed state with respect to proteins, while always allowing the passage of solvent, ions and small molecules. This makes it possible to trap a very high number of proteins (500-1000) inside nanoscale chambers as small as one attoliter, reaching concentrations up to 60 gL. Our method is fully compatible with parallelization by imaging arrays of nanochambers. Additionally, we show that enzymatic cascade reactions can be performed with multiple native enzymes under full nanoscale confinement and steady supply of reactants. This platform will greatly extend the possibilities to optically analyze interactions involving multiple proteins, such as the dynamics of oligomerization events.

摘要

检测和分析单个或少数生物分子的可能性对于理解相互作用和反应机制非常重要。理想情况下,分子应被限制在纳米级体积内,以便可以延长光学方法的观察时间。然而,开发用于在生理条件下对生物分子进行可靠的、非侵入性的捕获技术一直具有挑战性。在这里,我们提出了一种用于在不暴露于任何场梯度力的情况下对蛋白质进行长期无束缚(溶液相)捕获的平台。我们表明,响应性聚合物刷可以使固体状态纳米孔相对于蛋白质在完全打开和完全关闭状态之间切换,同时始终允许溶剂、离子和小分子通过。这使得可以在纳米级腔室(小至 1 阿托升)中捕获非常高数量的蛋白质(500-1000),达到高达 60 gL 的浓度。我们的方法完全可以通过成像纳米腔阵列来并行化。此外,我们表明,在完全纳米级限制和反应物的稳定供应下,可以进行多个天然酶的酶级联反应。该平台将极大地扩展涉及多个蛋白质的相互作用的光学分析的可能性,例如寡聚化事件的动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2ca/10447545/38aa7b885df0/41467_2023_40889_Fig1_HTML.jpg

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