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首页> 外文期刊>Biophysical Journal >The origin of the low-energy form of photosystem I light-harvesting complex Lhca4: mixing of the lowest exciton with a charge-transfer state.
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The origin of the low-energy form of photosystem I light-harvesting complex Lhca4: mixing of the lowest exciton with a charge-transfer state.

机译:光系统I光捕获复合物Lhca4的低能形式的起源:最低激子与电荷转移态的混合。

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摘要

The peripheral light-harvesting complex of photosystem I contains red chlorophylls (Chls) that, unlike the typical antenna Chls, absorb at lower energy than the primary electron donor P700. It has been shown that the red-most absorption band arises from two excitonically coupled Chls, although this interaction alone cannot explain the extreme red-shifted emission (25 nm, approximately 480 cm(-1) for Lhca4 at 4 K) that the red Chls present. Here, we report the electric field-induced absorption changes (Stark effect) on the Q(y) region of the Lhca4 complex. Two spectral forms, centered around 690 nm and 710 nm, were necessary to describe the absorption and Stark spectra. The analysis of the lowest energy transition yields a high value for the change in dipole moment, Deltamu(710nm) approximately 8 Df(-1), between the ground and excited states as compared with monomeric, Deltamu = 1 D, or dimeric, Deltamu = 5 D, Chl a in solution. The high value of the Deltamu demonstrates that the origin of the red-shifted emission is the mixing of the lowest exciton state with a charge-transfer state of the dimer. This energetic configuration, an excited state with charge-transfer character, is very favorable for the trapping and dissipation of excitations and could be involved in the photoprotective mechanism(s) of the photosystem I complex.
机译:光系统I的外围光收集复合体包含红色叶绿素(Chls),与典型的天线Chls不同,其吸收的能量低于初级电子给体P700。已经显示,最红的吸收带来自两个激子耦合的Chls,尽管仅此相互作用不能解释极端的红移发射(25 K,在4 K下Lhca4约为480 cm(-1)), Chls存在。在这里,我们报告电场诱导的Lhca4配合物的Q(y)区域的吸收变化(斯塔克效应)。描述吸收光谱和斯塔克光谱需要两个光谱形式,分别位于690 nm和710 nm附近。最低能量跃迁的分析为基态和激发态之间的偶极矩Deltamu(710nm)大约8 Df(-1)的变化产生了高值,与单体Deltamu = 1 D或二聚体Deltamu相比= 5 D,溶液中的Chla。 Deltamu的高值表明红移发射的起源是最低激子态与二聚体的电荷转移态的混合。这种具有电荷转移特性的激发态高能构型非常适合激发的俘获和耗散,并且可能参与光系统I配合物的光保护机理。

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