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利用光驱动分子马达对β-淀粉样蛋白样纤维进行非平衡机械破坏

Out-of-Equilibrium Mechanical Disruption of β-Amyloid-Like Fibers using Light-Driven Molecular Motors.

作者信息

Daou Dania, Zarate Yohan, Maaloum Mounir, Collin Dominique, Fleith Guillaume, Constantin Doru, Moulin Emilie, Giuseppone Nicolas

机构信息

SAMS Research Group, CNRS, Université de Strasbourg, Institut Charles Sadron UPR 22, Strasbourg, 67000, France.

CNRS, Institut Charles Sadron UPR 22, Strasbourg, 67000, France.

出版信息

Adv Mater. 2024 May;36(18):e2311293. doi: 10.1002/adma.202311293. Epub 2024 Jan 25.

Abstract

Artificial molecular motors have the potential to generate mechanical work on their environment by producing autonomous unidirectional motions when supplied with a source of energy. However, the harnessing of this mechanical work to subsequently activate various endoenergetic processes that can be useful in materials science remains elusive. Here, it is shown that by integrating a light-driven rotary motor through hydrogen bonds in a β-amyloid-like structure forming supramolecular hydrogels, the mechanical work generated during the constant rotation of the molecular machine under UV irradiation is sufficient to disrupt the β-amyloid fibers and to trigger a gel-to-sol transition at macroscopic scale. This melting of the gel under UV irradiation occurs 25 °C below the temperature needed to melt it by solely using thermal activation. In the dark, a reversible sol-gel transition is observed as the system fully recovers its original microstructure, thus illustrating the possible access to new kinds of motorized materials that can be controlled by advanced out-of-equilibrium thermodynamics.

摘要

人工分子马达在获得能量源时,有潜力通过产生自主单向运动对其周围环境做功。然而,利用这种机械功来激活各种对材料科学有用的吸能过程,仍然难以实现。本文表明,通过在形成超分子水凝胶的β-淀粉样蛋白样结构中,通过氢键整合一个光驱动旋转马达,分子机器在紫外线照射下持续旋转过程中产生的机械功足以破坏β-淀粉样纤维,并在宏观尺度上引发凝胶-溶胶转变。这种在紫外线照射下凝胶的熔化发生温度,比仅使用热激活使其熔化所需的温度低25°C。在黑暗中,观察到系统完全恢复其原始微观结构时,会发生可逆的溶胶-凝胶转变,从而说明了有可能获得可由先进的非平衡热力学控制的新型动力材料。

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