在bacteriorhodopsin中对视网膜异构的连贯控制
Valentyn I Prokhorenko1, Andrea M Nagy, Stephen A Waschuk
1Institute for Optical Sciences, Departments of Chemistry and Physics, University of Toronto, 80 St. George Street, M5S3H6, Toronto, Ontario, Canada.
研究人员用光学控制的视网膜异质化在bacteriorhodopsin使用形状光脉冲. 这种与生物过程相关的操纵,通过量子干扰效应,增强或抑制了20%的13-cis视网膜形成.
科学领域:
- 生物物理学的生物物理.
- 量子化学 是一个量子化学.
- 分子生物学分子生物学
背景情况:
- 细菌原素是一种含有视网膜的蛋白质,对于光驱动的质子送至关重要.
- 视网膜的光异构化 (全跨到13-cis) 是其功能的主要步骤.
- 了解和控制这一步骤是阐明生物光感应机制的关键.
研究的目的:
- 为了证明光学控制视网膜在bacteriorhodopsin中的初级光异构化步骤.
- 为了研究形状光脉冲对13-cis视网膜形成产量的影响.
- 探索量子连贯性和干扰在生物分子过程中的作用.
主要方法:
- 使用有形,弱场激光脉冲来光激发后背.
- 调节刺激脉冲的光谱组成部分 (相和振幅).
- 与转换有限脉冲相比,分析了13-cis视网膜形成的产量.
主要成果:
- 通过塑造激发脉冲,实现了13-cis视网膜产量的+/-20%增强或抑制.
- 该过程在低强度下,低于电子状态转换时的被证明的相位灵敏度.
- 观察到的振动连贯性的信号,支持量子干扰的机制.
结论:
- 生物分子功能的光学控制,特别是视网膜光异构化,可以使用定制的光脉冲来实现.
- 量子力学效应,如干扰,即使在复杂的生物系统中也起着重要作用.
- 这项工作为利用光在分子层面精确操纵生物过程开辟了道路.
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