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Engineering oxidoreductases: maquette proteins designed from scratch

机译:工程氧化还原酶:由划痕设计的Maquette蛋白

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摘要

The study of natural enzymes is complicated by the fact that only the most recent evolutionary progression can be observed. In particular, natural oxidoreductases stand out as profoundly complex proteins in which the molecular roots of function, structure and biological integration are collectively intertwined and individually obscured. In the present paper, we describe our experimental approach that removes many of these often bewildering complexities to identify in simple terms the necessary and sufficient requirements for oxidoreductase function. Ours is a synthetic biology approach that focuses on from-scratch construction of protein maquettes designed principally to promote or suppress biologically relevant oxidations and reductions. The approach avoids mimicry and divorces the commonly made and almost certainly false ascription of atomistically detailed functionally unique roles to a particular protein primary sequence, to gain a new freedom to explore protein-based enzyme function. Maquette design and construction methods make use of iterative steps, retraceable when necessary, to successfully develop a protein family of sturdy and versatile single-chain three- and four-α-helical structural platforms readily expressible in bacteria. Internally, they prove malleable enough to incorporate in prescribed positions most natural redox cofactors and many more simplified synthetic analogues. External polarity, charge-patterning and chemical linkers direct maquettes to functional assembly in membranes, on nanostructured titania, and to organize on selected planar surfaces and materials. These protein maquettes engage in light harvesting and energy transfer, in photochemical charge separation and electron transfer, in stable dioxygen binding and in simple oxidative chemistry that is the basis of multi-electron oxidative and reductive catalysis.
机译:对天然酶的研究变得复杂,因为只有最近的进化进化进展就可以观察到。特别是,天然氧化还原酶脱颖而出,其中函数,结构和生物集成的分子根集体交织在一起和单独模糊。在本文中,我们描述了我们的实验方法,可以在简单的术语中去除许多这些经常令人困惑的复杂性,以鉴定氧化还原酶功能的必要和充分要求。我们的是一种合成生物学方法,专注于划痕蛋白质Maquettes的划痕施工,主要是促进或抑制生物相关的氧化和减少。该方法避免了模仿和离婚通常且几乎肯定是错误地对特定蛋白质主要序列进行原子细致的功能独特作用,以获得促进基于蛋白质的酶功能的新自由度。 Maquette设计和施工方法利用迭代步骤,在必要时进行可回收,成功开发蛋白质系列的坚固和多功能单链三 - 和四-α-螺旋结构平台在细菌中易于表达。在内部,它们证明了足够的可延展性,以便在规定的位置纳入最自然的氧化还原辅因子和许多更简化的合成类似物。外部极性,电荷 - 图案化和化学接头直接Maquettes在膜上的膜上的功能组装,纳米结构的二氧化钛上,并在选定的平面表面和材料上组织。这些蛋白质Maquettes在光化学电荷分离和电子转移中接触光化电荷分离和电子转移,在稳定的二恶英结合和简单的氧化化学中,这是多电子氧化和还原催化的基础。

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