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细菌视紫红质的时间分辨定点自旋标记研究:M环特异性构象变化

Time-resolved site-directed spin-labeling studies of bacteriorhodopsin: loop-specific conformational changes in M.

作者信息

Mollaaghababa R, Steinhoff H J, Hubbell W L, Khorana H G

机构信息

Departments of Biology and Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

Biochemistry. 2000 Feb 8;39(5):1120-7. doi: 10.1021/bi991963h.

DOI:10.1021/bi991963h
PMID:10653658
Abstract

A spin-label at site 101 in the C-D loop of bacteriorhodopsin was previously found to detect a conformational change during the M --> N transition [Steinhoff, H. -J., Mollaaghababa, R., Altenbach, C., Hideg, K., Krebs, M. P., Khorana, H. G., and Hubbell, W. L. (1994) Science 266, 105-107]. We have extended these time-resolved electron paramagnetic resonance studies in purple membranes by analyzing conformational changes detected by a spin-label at another site in the C-D loop (103), and at sites in the A-B loop (35), the D-E loop (130), and the E-F loop (160). In addition, we have investigated the motion detected by a spin-label at site 101 in a D96A mutant background that has a prolonged M intermediate. We find that among the examined sites, only spin-labels in the C-D loop detect a significant change in the local environment after the rise of M. Although the D96A mutation dramatically prolongs the lifetime of the M intermediate, it does not perturb either the structure of bacteriorhodopsin or the nature of the light-activated conformational change detected by a spin-label at site 101. In this mutant, a conformational change is detected during the lifetime of M, when no change in the 410 nm absorbance is observed. These results provide direct structural evidence for the heterogeneity of the M population in real time, and demonstrate that the motion detected at site 101 occurs in M, prior to Schiff base reprotonation.

摘要

先前发现,细菌视紫红质C-D环中101位点的自旋标记可检测到M态向N态转变过程中的构象变化[施泰因霍夫,H.-J.,莫拉格哈巴巴,R.,阿尔滕巴赫,C.,希德格,K.,克雷布斯,M.P.,霍拉纳,H.G.,以及哈贝尔,W.L.(1994年)《科学》266卷,105 - 107页]。我们通过分析C-D环中另一位点(103)、A-B环中位点(35)、D-E环中位点(130)以及E-F环中位点(160)的自旋标记所检测到的构象变化,扩展了在紫色膜中进行的这些时间分辨电子顺磁共振研究。此外,我们研究了在具有延长的M中间体的D96A突变背景下,101位点的自旋标记所检测到的运动。我们发现,在所研究的位点中,只有C-D环中的自旋标记在M态出现后检测到局部环境有显著变化。尽管D96A突变极大地延长了M中间体的寿命,但它既不扰乱细菌视紫红质的结构,也不干扰101位点的自旋标记所检测到的光激活构象变化的性质。在这个突变体中,在M态的寿命期间检测到了构象变化,而此时在410nm吸光度上未观察到变化。这些结果实时提供了M群体异质性的直接结构证据,并证明在101位点检测到的运动发生在M态,先于席夫碱再质子化。

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