Department of Chemistry, Biophysical Chemistry, Bielefeld University, Universitätsstrasse 25, 33615 Bielefeld, Germany.
J Phys Chem B. 2010 Dec 30;114(51):17155-61. doi: 10.1021/jp1076388. Epub 2010 Dec 3.
Flavoprotein radicals are important intermediates in many biochemical processes. In the blue light sensor plant cryptochrome, the radical state acts as a signaling state. An isolation and assignment of infrared bands of flavin radicals in the most relevant spectral region of carbonyl stretches is missing because of their overlap with absorption of water and the protein moiety. In this study, the neutral radical state of flavoproteins was investigated by Fourier transform infrared difference spectroscopy. The light-induced conversion of oxidized to neutral radical state was monitored in a plant cryptochrome and that of radical to fully reduced state in a DASH cryptochrome. A pure difference spectrum of flavin radical minus oxidized state was obtained from a point mutant of a phototropin LOV (light-, oxygen-, or voltage-sensitive) domain. The analysis of the spectra revealed a correlation between the frequencies of carbonyl vibrations of the flavin radical state and those of its visible absorption. Plant cryptochrome shows a very low frequency of the carbonyl stretch in the radical state. It is postulated that the downshift is caused by the charge of an adjacent aspartate, which donated its proton to flavin N(5). Contributions from the protein moiety to the spectra were isolated for DASH and plant cryptochromes. As a conclusion, the photosensitive domain of plant cryptochromes shows changes in secondary structure upon illumination, which might be related to signaling.
黄素蛋白自由基是许多生化过程中的重要中间体。在蓝光传感器植物隐花色素中,自由基状态作为信号状态。由于其与水和蛋白质部分的吸收重叠,在羰基伸展的最相关光谱区域中,黄素自由基的红外带的分离和分配仍然缺失。在这项研究中,通过傅里叶变换红外差谱法研究了黄素蛋白的中性自由基状态。在植物隐花色素中监测了氧化态到中性自由基态的光诱导转化,在 DASH 隐花色素中监测了自由基到完全还原态的转化。从光受体 LOV(光、氧或电压敏感)结构域的点突变体获得了黄素自由基减去氧化态的纯差谱。对光谱的分析表明,黄素自由基态的羰基振动频率与可见吸收频率之间存在相关性。植物隐花色素在自由基态下显示出非常低的羰基伸展频率。据推测,这种下移是由相邻天冬氨酸的电荷引起的,其将质子捐赠给黄素 N(5)。为 DASH 和植物隐花色素分离了蛋白质部分对光谱的贡献。总之,植物隐花色素的光敏结构域在光照下显示出二级结构的变化,这可能与信号转导有关。