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首页> 外文期刊>Angewandte Chemie >Controlling Optical and Catalytic Activity of Genetically Engineered Proteins by Ultrasound
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Controlling Optical and Catalytic Activity of Genetically Engineered Proteins by Ultrasound

机译:通过超声控制遗传工程蛋白的光学和催化活性

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摘要

Ultrasound (US) produces cavitation-induced mechanical forces stretching and breaking polymer chains in solution. This type of polymer mechanochemistry is widely used for synthetic polymers, but not biomacromolecules, even though US is biocompatible and commonly used for medical therapy as well as in vivo imaging. The ability to control protein activity by US would thus be a major stepping-stone for these disciplines. Here, we provide the first examples of selective protein activation and deactivation by means of US. Using GFP as a model system, we engineer US sensitivity into proteins by design. The incorporation of long and highly charged domains enables the efficient transfer of force to the protein structure. We then use this principle to activate the catalytic activity of trypsin by inducing the release of its inhibitor. We expect that this concept to switch "on" and "off" protein activity by US will serve as a blueprint to remotely control other bioactive molecules.
机译:超声波(US)产生空化诱导的机械力,拉伸和破坏溶液中的聚合物链。这种类型的聚合物机械化学广泛用于合成聚合物,但不用于生物大分子,尽管US具有生物相容性,通常用于医疗治疗和体内成像。因此,我们控制蛋白质活动的能力将是这些学科的一个重要垫脚石。在这里,我们提供了第一个例子,选择性蛋白激活和失活的手段,我们。以GFP为模型系统,我们通过设计将我们的敏感性转化为蛋白质。长而高电荷结构域的结合使力能有效地转移到蛋白质结构上。然后,我们利用这一原理通过诱导胰蛋白酶抑制剂的释放来激活胰蛋白酶的催化活性。我们预计,这个由我们“开启”和“关闭”蛋白质活动的概念将成为远程控制其他生物活性分子的蓝图。

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