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肌肉纤维中具有受限流动性的荧光探针取向的无模型分析。

Model-independent analysis of the orientation of fluorescent probes with restricted mobility in muscle fibers.

作者信息

Dale R E, Hopkins S C, an der Heide U A, Marszałek T, Irving M, Goldman Y E

机构信息

The Randall Institute, King's College London, London WC2B 5RL, England.

出版信息

Biophys J. 1999 Mar;76(3):1606-18. doi: 10.1016/S0006-3495(99)77320-0.

Abstract

The orientation of proteins in ordered biological samples can be investigated using steady-state polarized fluorescence from probes conjugated to the protein. A general limitation of this approach is that the probes typically exhibit rapid orientational motion ("wobble") with respect to the protein backbone. Here we present a method for characterizing the extent of this wobble and for removing its effects from the available information about the static orientational distribution of the probes. The analysis depends on four assumptions: 1) the probe wobble is fast compared with the nanosecond time scale of its excited-state decay; 2) the orientational distributions of the absorption and emission transition dipole moments are cylindrically symmetrical about a common axis c fixed in the protein; 3) protein motions are negligible during the excited-state decay; 4) the distribution of c is cylindrically symmetrical about the director of the experimental sample. In a muscle fiber, the director is the fiber axis, F. All of the information on the orientational order of the probe that is available from measurements of linearly polarized fluorescence is contained in five independent polarized fluorescence intensities measured with excitation and emission polarizers parallel or perpendicular to F and with the propagation axis of the detected fluorescence parallel or perpendicular to that of the excitation. The analysis then yields the average second-rank and fourth-rank order parameters ( and ) of the angular distribution of c relative to F, and and , the average second-rank order parameters of the angular distribution for wobble of the absorption and emission transition dipole moments relative to c. The method can also be applied to other cylindrically ordered systems such as oriented lipid bilayer membranes and to processes slower than fluorescence that may be observed using longer-lived optically excited states.

摘要

利用与蛋白质偶联的探针的稳态偏振荧光,可以研究有序生物样品中蛋白质的取向。这种方法的一个普遍局限性在于,探针通常相对于蛋白质主链表现出快速的取向运动(“摆动”)。在此,我们提出一种方法,用于表征这种摆动的程度,并从有关探针静态取向分布的可用信息中消除其影响。该分析依赖于四个假设:1)与激发态衰变的纳秒时间尺度相比,探针摆动速度很快;2)吸收和发射跃迁偶极矩的取向分布关于固定在蛋白质中的公共轴c呈圆柱对称;3)在激发态衰变期间蛋白质运动可忽略不计;4)c的分布关于实验样品的指向矢呈圆柱对称。在肌肉纤维中,指向矢是纤维轴F。通过平行或垂直于F的激发和发射偏振器以及检测到的荧光的传播轴平行或垂直于激发光传播轴进行测量,可从线性偏振荧光测量中获得的关于探针取向序的所有信息都包含在五个独立的偏振荧光强度中。然后,该分析得出c相对于F的角分布的平均二阶和四阶序参数(),以及,即吸收和发射跃迁偶极矩相对于c的摆动的角分布的平均二阶序参数。该方法也可应用于其他圆柱有序系统,如取向脂质双层膜,以及应用于比荧光慢的过程,这些过程可以使用寿命更长的光激发态来观察。

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