Bajaj Vikram S, Mak-Jurkauskas Melody L, Belenky Marina, Herzfeld Judith, Griffin Robert G
Department of Chemistry and Francis Bitter Magnet Laboratory, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Proc Natl Acad Sci U S A. 2009 Jun 9;106(23):9244-9. doi: 10.1073/pnas.0900908106. Epub 2009 May 27.
Observation and structural studies of reaction intermediates of proteins are challenging because of the mixtures of states usually present at low concentrations. Here, we use a 250 GHz gyrotron (cyclotron resonance maser) and cryogenic temperatures to perform high-frequency dynamic nuclear polarization (DNP) NMR experiments that enhance sensitivity in magic-angle spinning NMR spectra of cryo-trapped photocycle intermediates of bacteriorhodopsin (bR) by a factor of approximately 90. Multidimensional spectroscopy of U-(13)C,(15)N-labeled samples resolved coexisting states and allowed chemical shift assignments in the retinylidene chromophore for several intermediates not observed previously. The correlation spectra reveal unexpected heterogeneity in dark-adapted bR, distortion in the K state, and, most importantly, 4 discrete L substates. Thermal relaxation of the mixture of L's showed that 3 of these substates revert to bR(568) and that only the 1 substate with both the strongest counterion and a fully relaxed 13-cis bond is functional. These definitive observations of functional and shunt states in the bR photocycle provide a preview of the mechanistic insights that will be accessible in membrane proteins via sensitivity-enhanced DNP NMR. These observations would have not been possible absent the signal enhancement available from DNP.
由于通常在低浓度下存在的状态混合物,对蛋白质反应中间体进行观察和结构研究具有挑战性。在这里,我们使用一台250吉赫兹回旋管(回旋共振脉塞)和低温来进行高频动态核极化(DNP)核磁共振实验,该实验将细菌视紫红质(bR)的低温捕获光循环中间体的魔角旋转核磁共振谱的灵敏度提高了约90倍。对U-(13)C,(15)N标记样品进行的多维光谱分析解析了共存状态,并对几种以前未观察到的中间体的视黄叉发色团进行了化学位移归属。相关光谱揭示了暗适应bR中意想不到的异质性、K态的畸变,以及最重要的是4个离散的L亚态。L亚态混合物的热弛豫表明,其中3个亚态会恢复为bR(568),并且只有具有最强抗衡离子和完全弛豫的13-顺式键的1个亚态具有功能。bR光循环中功能态和分流态的这些明确观察结果为通过灵敏度增强的DNP NMR在膜蛋白中获得的机制见解提供了一个预览。如果没有DNP提供的信号增强,这些观察结果是不可能实现的。