Ultrafast kinetics of PSI-LHCI super-complex from the moss Physcomitrella patens

IF 3.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et Biophysica Acta-Bioenergetics Pub Date : 2024-11-17 DOI:10.1016/j.bbabio.2024.149526
Dongyang Liu , Qiujing Yan , Xiaochun Qin , Lijin Tian
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Abstract

Photosystem I (PSI) is a large membrane photosynthetic complex that harvests sunlight and drives photosynthetic electron transport. In both green algae and higher plants, PSI's ultrafast energy transfer and charge separation kinetics have been characterized. In contrast, it is not yet clear in Physcomitrella patens, even though moss is one of the earliest land plants and represents a critical stage in plant evolution. Here, we measured the time-resolved fluorescence of purified Pp PSI-LHCI at both room temperature (RT) and 77 K. Compared to the PSI kinetics of Arabidopsis thaliana at RT, we found that although the overall trapping time of Pp PSI-LHCI is nearly identical, ∼46 ps, their lifetimes at different wavelength regions differ. Specifically, Pp PSI-LHCI is slower in energy trapping below 720 nm but faster beyond. The slow-down of energy transfer between bulk chlorophylls (Chls, <720 nm) in Pp PSI-LHCI is probably because of the larger spatial gap between the PSI core and LHCI belt, and the acceleration of trapping at longer wavelength is most likely due to the lack of low-energy red-shifted Chls (red Chls). Indeed, time-resolved fluorescence results at 77 K revealed only three types of red Chls of 702 nm, 712 nm, and 720 nm in Pp PSI-LHCI but failed to detect the red Chls of 735 nm that present in LHCI in higher plants. Finally, we briefly discussed the evolutionary adaptations of PSI-LHCI in the context of red Chls from green algae to mosses and to land plants.
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青苔Physcomitrella patens的PSI-LHCI超级复合物的超快动力学。
光系统 I(PSI)是一个大型膜光合复合体,它能捕获阳光并驱动光合电子传递。在绿藻和高等植物中,PSI 的超快能量转移和电荷分离动力学都已得到表征。相比之下,尽管苔藓是最早的陆地植物之一,代表着植物进化的一个关键阶段,但它在青苔(Physcomitrella patens)中的情况尚不清楚。在这里,我们测量了纯化的 Pp PSI-LHCI 在室温(RT)和 77 K 下的时间分辨荧光。与拟南芥在室温下的 PSI 动力学相比,我们发现虽然 Pp PSI-LHCI 的总体捕获时间几乎相同(约 46 ps),但它们在不同波长区域的寿命却不同。具体来说,Pp PSI-LHCI 在 720 纳米以下的能量捕获较慢,但在 720 纳米以上的能量捕获较快。大量叶绿素(Chls、
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来源期刊
Biochimica et Biophysica Acta-Bioenergetics
Biochimica et Biophysica Acta-Bioenergetics 生物-生化与分子生物学
CiteScore
9.50
自引率
7.00%
发文量
363
审稿时长
92 days
期刊介绍: BBA Bioenergetics covers the area of biological membranes involved in energy transfer and conversion. In particular, it focuses on the structures obtained by X-ray crystallography and other approaches, and molecular mechanisms of the components of photosynthesis, mitochondrial and bacterial respiration, oxidative phosphorylation, motility and transport. It spans applications of structural biology, molecular modeling, spectroscopy and biophysics in these systems, through bioenergetic aspects of mitochondrial biology including biomedicine aspects of energy metabolism in mitochondrial disorders, neurodegenerative diseases like Parkinson''s and Alzheimer''s, aging, diabetes and even cancer.
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