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电子顺磁共振检测的异-1-细胞色素c外部定位半胱氨酸定向自旋标记突变体的折叠动力学

EPR-detected folding kinetics of externally located cysteine-directed spin-labeled mutants of iso-1-cytochrome c.

作者信息

DeWeerd K, Grigoryants V, Sun Y, Fetrow J S, Scholes C P

机构信息

Department of Chemistry and Center for Biophysics and Biochemistry, University at Albany, SUNY, Albany, New York 12222, USA.

出版信息

Biochemistry. 2001 Dec 25;40(51):15846-55. doi: 10.1021/bi011414n.

Abstract

We report the application of our newly developed dielectric resonator-based flow and stopped-flow kinetic EPR systematically to probe protein folding in yeast iso-1-cytochrome c at cysteine-directed spin-labeled locations. The locations studied have not been previously directly probed by other techniques, and we observe them on a time scale stretching from 50 micros to seconds. On the basis of crystal structure and homology information, the following mutation-tolerant, externally located cysteine labeling sites were chosen (in helices, T8C, E66C, and N92C; in loops, E21C, V28C, H39C, D50C, and K79C), and labeling at these sites was not destabilizing. Dilution of denaturant was used to induce folding and thereby to cause a change in the spin label EPR signal as folding altered the motion of the spin label. Under folding conditions, including the presence of imidazole to eliminate kinetic trapping due to heme misligation, a phase of folding on the 20-30 ms time scale was found. This phase occurred not only at the T8C and N92C labeling sites in the N- and C-terminal helices, where such a phase has been associated with folding in these helices, but overall at labeling sites throughout the protein. In the absence of imidazole the 20-30 ms phase disappeared, and another phase having the time scale of 1 s appeared throughout the protein. There was evidence under all conditions for a burst phase on a scale of less than several milliseconds which occurred at labeling positions V28C, H39C, D50C, E66C, and K79C in the middle of the protein sequence. At spin-labeled D50C rapid-mix flow EPR indicated a very short approximately 50 micros phase possibly associated with the prefolding or compaction of the loop to which D50 belongs. Spin labels have been criticized as perturbing the phenomena which they measure, but our spin labeling strategy has reported common kinetic themes and not perturbed, disconnected kinetic events.

摘要

我们报告了我们新开发的基于介质谐振器的流动和停流动力学电子顺磁共振(EPR)的应用,系统地用于探测酵母同工酶-1-细胞色素c在半胱氨酸定向自旋标记位置的蛋白质折叠。所研究的位置以前尚未被其他技术直接探测过,我们在从50微秒到秒的时间尺度上观察它们。基于晶体结构和同源性信息,选择了以下耐突变的外部半胱氨酸标记位点(在螺旋中,T8C、E66C和N92C;在环中,E21C、V28C、H39C、D50C和K79C),并且在这些位点的标记不会使蛋白质不稳定。通过变性剂的稀释来诱导折叠,从而随着折叠改变自旋标记的运动而导致自旋标记EPR信号发生变化。在折叠条件下,包括存在咪唑以消除由于血红素错配引起的动力学捕获,发现在20-30毫秒时间尺度上存在一个折叠阶段。这个阶段不仅发生在N端和C端螺旋中的T8C和N92C标记位点,在这些螺旋中这样的阶段与这些螺旋的折叠相关,而且在整个蛋白质的标记位点都出现。在没有咪唑的情况下,20-30毫秒的阶段消失,并且在整个蛋白质中出现了另一个时间尺度为1秒的阶段。在所有条件下都有证据表明在小于几毫秒的尺度上存在一个爆发阶段,该阶段发生在蛋白质序列中间的V28C、H39C、D50C、E66C和K79C标记位置。在自旋标记的D50C处,快速混合流动EPR表明存在一个非常短的约50微秒的阶段,可能与D50所属环的预折叠或压实有关。自旋标记曾被批评为会干扰它们所测量的现象,但我们的自旋标记策略揭示了常见的动力学主题,并且没有干扰不相关的动力学事件。

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