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首页> 外文期刊>Journal of physical chemistry letters >Control of Allosteric Protein Electrochemical Switches with Biomolecular and Electronic Signals
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Control of Allosteric Protein Electrochemical Switches with Biomolecular and Electronic Signals

机译:用生物分子和电子信号控制颠覆蛋白质电化学开关

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The construction of allosteric protein switches is a key goal of synthetic biology. Such switches can be compiled into signaling systems mimicking information and energy processing systems of living organisms. Here we demonstrate construction of a biocatalytic electrode functionalized with a recombinant chimeric protein between pyrroloquinoline quinone-dependent glucose dehydrogenase and calmodulin. This electrode could be activated by calmodulin-binding peptide and showed a high bioelectrocatalytic current (ca. 300 mu A) due to efficient direct electron transfer. In order to expand the types of inputs that can be used to activate the developed electrode, we constructed a caged version of calmodulin-binding peptide that could be proteolytically uncaged using a protease of choice. Finally, the complexity of the switchable bioelectrochemical system was further increased by the use of almost any kind of molecule/biomolecule or electronic signal, unequivocally proving the orthogonality of the aforementioned system.
机译:构建构型蛋白质交换机的构建是合成生物学的关键目标。可以将这种开关编译成信号传达系统模仿生物体的信息和能量处理系统。在这里,我们证明了在吡咯喹啉醌依赖性葡萄糖脱氢酶和钙调蛋白之间用重组嵌合蛋白官能团官能化的生物催化电极的构建。该电极可以通过钙调蛋白结合肽激活,并且由于有效的直接电子转移而显示出高生物电催化电流(约300μA)。为了扩展可用于激活开发电极的输入的类型,我们构建了钙调素结合肽的笼式版本,其可以使用蛋白酶选择蛋白质解衍射。最后,通过使用几乎任何种类的分子/生物分子或电子信号,毫不概述地证明了上述系统的正交性,进一步增加了可切换生物电化学系统的复杂性。

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