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Constructing a man-made c-type cytochrome maquette in vivo: electron transfer oxygen transport and conversion to a photoactive light harvesting maquette

机译:在体内构建人造的c型细胞色素模样:电子转移氧气传输并转换为光敏光收集模样

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摘要

The successful use of man-made proteins to advance synthetic biology requires both the fabrication of functional artificial proteins in a living environment, and the ability of these proteins to interact productively with other proteins and substrates in that environment. Proteins made by the maquette method integrate sophisticated oxidoreductase function into evolutionarily naive, non-computationally designed protein constructs with sequences that are entirely unrelated to any natural protein. Nevertheless, we show here that we can efficiently interface with the natural cellular machinery that covalently incorporates heme into natural cytochromes c to produce in vivo an artificial c-type cytochrome maquette. Furthermore, this c-type cytochrome maquette is designed with a displaceable histidine heme ligand that opens to allow functional oxygen binding, the primary event in more sophisticated functions ranging from oxygen storage and transport to catalytic hydroxylation. To exploit the range of functions that comes from the freedom to bind a variety of redox cofactors within a single maquette framework, this c-type cytochrome maquette is designed with a second, non-heme C, tetrapyrrole binding site, enabling the construction of an elementary electron transport chain, and when the heme C iron is replaced with zinc to create a Zn porphyrin, a light-activatable artificial redox protein. The work we describe here represents a major advance in de novo protein design, offering a robust platform for new c-type heme based oxidoreductase designs and an equally important proof-of-principle that cofactor-equipped man-made proteins can be expressed in living cells, paving the way for constructing functionally useful man-made proteins in vivo.
机译:成功使用人造蛋白质促进合成生物学既需要在生活环境中制造功能性人造蛋白质,又需要这些蛋白质与该环境中其他蛋白质和底物进行有效相互作用的能力。用maquette方法生产的蛋白质将复杂的氧化还原酶功能整合到进化上幼稚的,非计算性设计的蛋白质构建体中,该构建体的序列与任何天然蛋白质完全无关。然而,我们在这里表明,我们可以有效地与将血红素共价结合到天然细胞色素c中的天然细胞机制相互作用,从而在体内产生人工c型细胞色素模型。此外,该c型细胞色素模样设计有可置换的组氨酸血红素配体,该配体可打开以允许功能性氧结合,主要事件是更复杂的功能,从氧的存储和运输到催化羟基化。为了利用自由结合单个仿形框架中的多种氧化还原辅因子所产生的功能范围,此c型细胞色素仿形体设计有第二个非血红素C四吡咯结合位点,从而能够构建一个基本的电子传输链,当血红素C铁被锌取代后生成锌卟啉时,这是一种可光激活的人工氧化还原蛋白。我们在此描述的工作代表了从头蛋白质设计的重大进展,为基于c型血红素的新型氧化还原酶设计提供了一个强大的平台,并且具有同样重要的原理证明,可以在生活中表达辅因子配备的人造蛋白质细胞,为在体内构建功能上有用的人造蛋白质铺平了道路。

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