Unveiling large charge transfer character of PSII in an iron-deficient cyanobacterial membrane: A Stark fluorescence spectroscopy study

IF 2.9 3区 生物学 Q2 PLANT SCIENCES
Anjue Mane Ara, Sandrine D’Haene, Rienk van Grondelle, Md. Wahadoszamen
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Abstract

In this work, we applied Stark fluorescence spectroscopy to an iron-stressed cyanobacterial membrane to reveal key insights about the electronic structures and excited state dynamics of the two important pigment-protein complexes, IsiA and PSII, both of which prevail simultaneously within the membrane during iron deficiency and whose fluorescence spectra are highly overlapped and hence often hardly resolved by conventional fluorescence spectroscopy. Thanks to the ability of Stark fluorescence spectroscopy, the fluorescence signatures of the two complexes could be plausibly recognized and disentangled. The systematic analysis of the SF spectra, carried out by employing standard Liptay formalism with a realistic spectral deconvolution protocol, revealed that the IsiA in an intact membrane retains almost identical excited state electronic structures and dynamics as compared to the isolated IsiA we reported in our earlier study. Moreover, the analysis uncovered that the excited state of the PSII subunit of the intact membrane possesses a significantly large CT character. The observed notably large magnitude of the excited state CT character may signify the supplementary role of PSII in regulative energy dissipation during iron deficiency.

Abstract Image

揭示缺铁蓝藻膜中 PSII 的大电荷转移特性:斯塔克荧光光谱研究
在这项工作中,我们将斯塔克荧光光谱法应用于铁胁迫蓝藻膜,揭示了两种重要色素-蛋白质复合物(IsiA 和 PSII)的电子结构和激发态动力学的关键信息。得益于斯塔克荧光光谱技术,这两种复合物的荧光特征可以被识别和区分开来。通过采用标准的利普泰形式主义和现实的光谱解卷积协议对 SF 光谱进行系统分析,发现完整膜中的 IsiA 与我们在早期研究中报告的分离 IsiA 相比,几乎保持了相同的激发态电子结构和动力学。此外,分析还发现完整膜中 PSII 亚基的激发态具有显著的大 CT 特性。所观察到的激发态 CT 特性的显著大小可能意味着 PSII 在缺铁过程中对能量耗散起着辅助调节作用。
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来源期刊
Photosynthesis Research
Photosynthesis Research 生物-植物科学
CiteScore
6.90
自引率
8.10%
发文量
91
审稿时长
4.5 months
期刊介绍: Photosynthesis Research is an international journal open to papers of merit dealing with both basic and applied aspects of photosynthesis. It covers all aspects of photosynthesis research, including, but not limited to, light absorption and emission, excitation energy transfer, primary photochemistry, model systems, membrane components, protein complexes, electron transport, photophosphorylation, carbon assimilation, regulatory phenomena, molecular biology, environmental and ecological aspects, photorespiration, and bacterial and algal photosynthesis.
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