远红色光合作用:植物光系统II反应中心存在两个电荷分离路径
Andrea Pavlou1, Fredrik Mokvist1, Stenbjörn Styring1
1Molecular Biomimetics, Department of Chemistry-Ångström, Uppsala University, P.O. Box 523, 751 20 Uppsala, Sweden.
Biochimica et biophysica acta. Bioenergetics
|June 24, 2023
概括
这项研究调查了光系统II的电荷分离,在可见光和远红光下,该研究揭示了不同的路径. 电子偏磁共振光谱显示了取决于温度的差异,支持了替代初级光化学模型.
科学领域:
- 光合作用研究研究光合作用.
- 植物生物化学 植物生物化学
- 频谱学是一种光谱学.
背景情况:
- 光系统II (PSII) 对于氧光合作用至关重要.
- 了解电荷分离路径是PSII效率的关键.
- 之前的工作建议在深红光下采用替代路径.
研究的目的:
- 调查PSII中电荷分离的温度依赖性.
- 为了比较可见光和远红光下的电子转移特性.
- 支持或反驳拟议的替代电荷分离路径.
主要方法:
- 电子偏磁共振 (EPR) 光谱学.电子偏磁共振 (EPR) 光谱学.
- 在77-295 K的温度范围内进行的研究.
- 分析S2状态多线信号和电子捐赠者的氧化.
主要成果:
- S2状态信号诱导的温度依赖抑制在可见光 (T_inhibition ~157 K) 和远红光 (T_inhibition ~240 K) 之间有所不同.
- 没有观察到二次电子捐赠者 (细胞色素b559,叶绿素Z) 的显著氧化.
- 电子转移的分割比在77K的可见光 (0.4) 和远红光 (1.7) 下显著不同.
结论:
- 远红色的光线在PSII中诱导不同的电荷分离产品,在广泛的温度范围内.
- 数据支持在远红光下形成明显的初级光化学模型.
- 证据表明,在远红光条件下,ChlD1分子上的孔位定位.
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