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Ultrafast infrared spectroscopy reveals water-mediated coherent dynamics in an enzyme active site

机译:超快速红外光谱揭示了酶活性位点中水介导的相干动力学

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Understanding the impact of fast dynamics upon the chemical processes occurring within the active sites of proteins and enzymes is a key challenge that continues to attract significant interest, though direct experimental insight in the solution phase remains sparse. Similar gaps in our knowledge exist in understanding the role played by water, either as a solvent or as a structural/dynamic component of the active site. In order to investigate further the potential biological roles of water, we have employed ultrafast multidimensional infrared spectroscopy experiments that directly probe the structural and vibrational dynamics of NO bound to the ferric haem of the catalase enzyme from Corynebacterium glutamicum in both H2O and D2O. Despite catalases having what is believed to be a solvent-inaccessible active site, an isotopic dependence of the spectral diffusion and vibrational lifetime parameters of the NO stretching vibration are observed, indicating that water molecules interact directly with the haem ligand. Furthermore, IR pump–probe data feature oscillations originating from the preparation of a coherent superposition of low-frequency vibrational modes in the active site of catalase that are coupled to the haem ligand stretching vibration. Comparisons with an exemplar of the closely-related peroxidase enzyme family shows that they too exhibit solvent-dependent active-site dynamics, supporting the presence of interactions between the haem ligand and water molecules in the active sites of both catalases and peroxidases that may be linked to proton transfer events leading to the formation of the ferryl intermediate Compound I. In addition, a strong, water-mediated, hydrogen bonding structure is suggested to occur in catalase that is not replicated in peroxidase; an observation that may shed light on the origins of the different functions of the two enzymes.
机译:尽管对溶液相的直接实验了解仍然很少,但了解快速动力学对蛋白质和酶活性位点内发生的化学过程的影响是一个仍然引起人们极大兴趣的关键挑战。我们在了解水作为溶剂或作为活性位点的结构/动力学成分所起的作用时,在我们的知识中也存在类似的差距。为了进一步研究水的潜在生物学作用,我们采用了超快速多维红外光谱实验,直接探测了谷氨酸棒杆菌中过氧化氢酶的铁血红素结合的一氧化氮的结构和振动动力学。 H 2 O和D 2 O。尽管过氧化氢酶具有据信是溶剂不可接近的活性位点,但是观察到NO扩散振动的光谱扩散和振动寿命参数的同位素依赖性,表明水分子直接与血红素配体相互作用。此外,红外泵浦探针数据的特征在于振荡,这是由于过氧化氢酶活性位点中低频振动模式的相干叠加而产生的,该叠加与血红素配体的拉伸振动有关。与紧密相关的过氧化物酶家族示例的比较表明,它们也表现出溶剂依赖性的活性位点动力学,支持了过氧化氢酶和过氧化物酶的活性位点中血红素配体和水分子之间相互作用的存在。另外,有人提出过氧化氢酶中存在一种强的,水介导的氢键结结构,而过氧化物酶中没有这种结构发生复制。可能揭示两种酶不同功能的起源的观察结果。

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