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The mechanochemistry of copper reports on the directionality of unfolding in model cupredoxin proteins

机译:铜的力学化学报告模型铜氧还蛋白蛋白解折叠的方向性

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Understanding the directionality and sequence of protein unfolding is crucial to elucidate the underlying folding free energy landscape. An extra layer of complexity is added in metalloproteins, where a metal cofactor participates in the correct, functional fold of the protein. However, the precise mechanisms by which organometallic interactions are dynamically broken and reformed on (un) folding are largely unknown. Here we use single molecule force spectroscopy AFM combined with protein engineering and MD simulations to study the individual unfolding pathways of the blue-copper proteins azurin and plastocyanin. Using the nanomechanical properties of the native copper centre as a structurally embedded molecular reporter, we demonstrate that both proteins unfold via two independent, competing pathways. Our results provide experimental evidence of a novel kinetic partitioning scenario whereby the protein can stochastically unfold through two distinct main transition states placed at the N and C termini that dictate the direction in which unfolding occurs.
机译:了解蛋白质解折叠的方向和顺序对于阐明潜在的折叠自由能格局至关重要。金属蛋白增加了一层额外的复杂性,其中金属辅因子参与了蛋白的正确功能折叠。然而,在(非)折叠时动态破坏和重新形成有机金属相互作用的确切机理尚不清楚。在这里,我们使用单分子力光谱AFM结合蛋白质工程和MD模拟来研究蓝铜蛋白质天青蛋白和质体蓝蛋白的单个展开途径。使用天然铜中心的纳米力学性质作为结构嵌入的分子报道分子,我们证明了这两种蛋白通过两个独立的竞争途径而展开。我们的结果提供了一种新颖的动力学分配方案的实验证据,其中蛋白质可以通过位于N和C末端的两个不同的主要过渡态随机地展开,这些状态决定了展开的方向。

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