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Diffractive optics-based heterodyne detected four-wave mixing studies of protein dynamics: insights into ligand escape and cooperativity in heme proteins

机译:基于衍射光学的外差检测了蛋白质动力学的四波混频研究:洞察血红蛋白中的配体逃逸和协同作用

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Summary form only given. The relationship between molecular structure and function is of fundamental importance for understanding biological systems. The heme proteins hemoglobin and myoglobin provide ideal model systems for investigating this relationship because their structure and function are well characterized. In addition, they are amenable to optical probes, allowing their functional processes to be initiated by photodissociation. Previous studies on the femtosecond timescale have characterized the dynamics of myoglobin from femtoseconds to nanoseconds. The current work extends these studies to the millisecond regime to capture the full range of functionally relevant motions. These motions are often small and require a highly sensitive spectroscopy for their study. Diffractive optics-based four-wave mixing provides the sensitivity needed to observe changes in radius of >0.001 /spl Aring/. The use of diffractive optics facilitates the separation of Real and Imaginary parts of the /spl chi//sup 3/ signal by providing the required beam geometry for mixing the signal with a reference beam. In addition it offers passive phase-stabilization. A novel detection method that exploits the symmetry of the four-wave mixing experiment has been implemented to provide automatic isolation of the Real part of the signal. This simplifies the interpretation of the data by obviating the need to identify the Imaginary part of the signal. Further improvement in the signal-to-noise is an added benefit of this method.
机译:仅提供摘要表格。分子结构与功能之间的关系对于理解生物系统至关重要。血红蛋白血红蛋白和肌红蛋白为研究这种关系提供了理想的模型系统,因为它们的结构和功能已被很好地表征。另外,它们适合于光学探针,从而允许它们的功能过程通过光解离而引发。以前关于飞秒时间尺度的研究已将肌红蛋白从飞秒到纳秒的动态特征化了。当前的工作将这些研究扩展到毫秒制,以捕获功能相关运动的全部范围。这些运动通常很小,需要高度敏感的光谱学进行研究。基于衍射光学的四波混频提供了观察半径变化大于0.001 / spl Aring /所需的灵敏度。通过提供将信号与参考光束混合所需的光束几何形状,衍射光学器件的使用有助于分离/ spl chi // sup 3 /信号的实部和虚部。此外,它还提供了无源相位稳定功能。已经实现了一种利用四波混频实验对称性的新颖检测方法,以自动隔离信号的实部。通过消除识别信号虚部的需要,这简化了数据的解释。信噪比的进一步改善是该方法的另一个好处。

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