Kim Eunchul, Ahn Tae Kyu, Kumazaki Shigeichi
Department of Energy Science, Sungkyunkwan University, Suwon, 440-746 Korea.
Department of Energy Science, Sungkyunkwan University, Suwon, 440-746 Korea
Plant Cell Physiol. 2015 Apr;56(4):759-68. doi: 10.1093/pcp/pcv004. Epub 2015 Jan 19.
In chloroplasts of plants and algae, state transition is an important regulatory mechanism to maintain the excitation balance between PSI and PSII in the thylakoid membrane. Light-harvesting complex II (LHCII) plays a key role as the regulated energy distributor between PSI and PSII. It is widely accepted that LHCII, which is bound to PSII localized mainly in the granal thylakoid, migrates to bind with PSI localized mainly in the stroma-exposed thylakoid under preferential excitation of PSII. The phenomena have been extensively characterized by many methods. However, the exchange of LHCII between PSII and PSI has not been directly observed in vivo at physiological temperatures. Herein we applied fluorescence spectromicroscopy to Arabidopsis mesophyll protoplasts in order to observe in vivo changes in fluorescence spectra of granal and stromal thylakoid regions during the state transition. The microscopic fluorescence spectra obtained from a few sections with different depths were decomposed into PSI and PSII spectra and self-absorption effects were removed. We were able to determine amplitude changes of PSI and PSII in fluorescence spectra solely due to state transition. Subdomain analysis of granal and stromal thylakoid regions clarified variant behaviors in the different regions.
在植物和藻类的叶绿体中,状态转换是维持类囊体膜上PSI和PSII之间激发平衡的重要调控机制。捕光复合体II(LHCII)作为PSI和PSII之间的能量分配调节者发挥着关键作用。普遍认为,与主要位于基粒类囊体上的PSII结合的LHCII,在PSII优先激发的情况下,会迁移至主要位于基质暴露类囊体上的PSI并与之结合。这些现象已通过多种方法进行了广泛表征。然而,尚未在生理温度下在体内直接观察到LHCII在PSII和PSI之间的交换。在此,我们将荧光光谱显微镜应用于拟南芥叶肉原生质体,以观察状态转换过程中基粒和基质类囊体区域荧光光谱的体内变化。从不同深度的几个切片获得的显微荧光光谱被分解为PSI和PSII光谱,并消除了自吸收效应。我们能够确定仅由于状态转换导致的荧光光谱中PSI和PSII的振幅变化。对基粒和基质类囊体区域的亚结构分析阐明了不同区域的不同行为。