Department of Physics and Astronomy, University of Rochester, 14627, Rochester, New York, USA.
Photosynth Res. 1986 Jan;9(1-2):13-20. doi: 10.1007/BF00029727.
The light-harvesting complex (LHC) of higher plants isolated using Triton X-100 has been studied during its transformation into a monomeric form known as CPII. The change was accomplished by gradually increasing the concentration of the detergent, sodium dodecyl sulfate (SDS). Changes in the red spectral region of the absorption, circular dichroism (CD), and linear dichroism spectra occurring during this treatment have been observed at room temperature. According to a current hypothesis the main features of the visible region absorption and CD spectra of CPII can be explained reasonably successfully in terms of an exciton coupling among its chlorophyll (Chl) b molecules. We suggest that the spectral differences between the isolated LHC and the CPII may be understood basically in terms of an exciton coupling between the Chl b core of a given CPII unit and at least one of the Chla's of either the same or the adjacent CPII. We propose that this Chl a-Chl b coupling existing in LHC disappears upon segregation into CPII, probably as a result of a detergent-related overall rotation of the strongly coupled Chl b core which changes the relative orientations of the two types of pigments and thus the nature of their coupling.
使用 Triton X-100 分离的高等植物的捕光复合物 (LHC) 在转化为单体形式 CPII 的过程中得到了研究。通过逐渐增加去污剂十二烷基硫酸钠 (SDS) 的浓度来实现这种转变。在室温下观察到了在这种处理过程中吸收的红光谱区、圆二色性 (CD) 和线二色性光谱的变化。根据目前的假设,CPII 的可见区域吸收和 CD 光谱的主要特征可以用其叶绿素 (Chl) b 分子之间的激子耦合来合理地成功解释。我们建议,可以根据给定 CPII 单元的 Chl b 核心与同一或相邻 CPII 的至少一个 Chla 之间的激子耦合,基本上理解分离的 LHC 和 CPII 之间的光谱差异。我们提出,这种存在于 LHC 中的 Chl a-Chl b 耦合在分离为 CPII 时消失,可能是由于与去污剂相关的强烈耦合 Chl b 核心的整体旋转,从而改变了两种类型的色素的相对取向,从而改变了它们的耦合性质。