Pålsson L O, Spangfort M D, Gulbinas V, Gillbro T
Department of Physical Chemistry, University of Umeå, Sweden.
FEBS Lett. 1994 Feb 14;339(1-2):134-8. doi: 10.1016/0014-5793(94)80400-1.
The excitation energy transfer between chlorophyll b (Chl b) and chlorophyll a (Chl a) in the isolated trimeric chlorophyll-a/b-binding protein complex of spinach photosystem 2 (LHC II) has been studied by femtosecond spectroscopy. In the main absorption band of Chl b the ground state recovery consists of two components of 0.5 ps and 2.0 ps, respectively. Also in the Chl a absorption band, at 665 nm, the ground state recovery is essentially bi-exponential. In this case is, however, the fastest relaxation lifetime is a 2.0 ps component followed by a slower component with a lifetime in the order of 10-20 ps. In the Chl b absorption band a more or less constant anisotropy of r = 0.2 was observed during the 3 ps the system was monitored. In the Chl a absorption band there was, however, a relaxation of the anisotropy from r = 0.3 to a quasi steady state level of r = 0.18 in about 1 ps. Since the 0.5 ps component is only seen upon selective excitation of Chl b we assign this component to the energy transfer between Chl b and Chl a. The other components most likely represents redistribution processes of energy among spectrally different forms of Chl a. The energy transfer process between Chl b and Chl a can well be explained by the Förster mechanism which also gives a calculated distance of 13 A between interacting chromophores. The organisation of chlorophylls in LHC II is discussed in view of the recent crystal structure data (1991) Nature 350, 130].
利用飞秒光谱研究了菠菜光系统2(LHC II)分离的三聚体叶绿素a/b结合蛋白复合物中叶绿素b(Chl b)与叶绿素a(Chl a)之间的激发能转移。在Chl b的主要吸收带中,基态恢复分别由0.5皮秒和2.0皮秒的两个成分组成。同样在Chl a吸收带中,在665纳米处,基态恢复基本上是双指数的。然而,在这种情况下,最快的弛豫寿命是一个2.0皮秒的成分,随后是一个较慢的成分,寿命约为10 - 20皮秒。在监测系统的3皮秒时间内,在Chl b吸收带中观察到r = 0.2的或多或少恒定的各向异性。然而,在Chl a吸收带中,各向异性在大约1皮秒内从r = 0.3弛豫到r = 0.18的准稳态水平。由于仅在Chl b的选择性激发时才出现0.5皮秒的成分,我们将该成分归因于Chl b与Chl a之间的能量转移。其他成分很可能代表了Chl a光谱不同形式之间的能量重新分布过程。Chl b与Chl a之间的能量转移过程可以很好地用Förster机制来解释,该机制还给出了相互作用发色团之间计算得出的13埃的距离。鉴于最近的晶体结构数据(1991年,《自然》350, 130),讨论了LHC II中叶绿素的组织情况。