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Spectral analysis on origination of the bands at 437 nm and 475.5 nm of chlorophyll fluorescence excitation spectrum in Arabidopsis chloroplasts
Author(s) -
Zeng Lizhang,
Wang Yongqiang,
Zhou Jun
Publication year - 2016
Publication title -
luminescence
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.428
H-Index - 45
eISSN - 1522-7243
pISSN - 1522-7235
DOI - 10.1002/bio.3022
Subject(s) - fluorescence , excitation , quenching (fluorescence) , chlorophyll , photochemistry , chlorophyll fluorescence , chemistry , chlorophyll a , absorption (acoustics) , photosynthesis , analytical chemistry (journal) , materials science , optics , physics , biochemistry , organic chemistry , chromatography , quantum mechanics , composite material
Chlorophyll fluorescence has been often used as an intrinsic optical molecular probe to study photosynthesis. In this study, the origin of bands at 437 and 475.5 nm in the chlorophyll fluorescence excitation spectrum for emission at 685 nm in Arabidopsis chloroplasts was investigated using various optical analysis methods. The results revealed that this fluorescence excitation spectrum was related to the absorption characteristics of pigment molecules in PSII complexes. Moreover, the excitation band centred at 475.5 nm had a blue shift, but the excitation band at 437 nm changed relatively less due to induction of non‐photochemical quenching (NPQ). Furthermore, fluorescence emission spectra showed that this blue shift occurred when excitation energy transfer from both chlorophyll b (Chl b ) and carotenoids ( Cars ) to chlorophyll a (Chl a ) was blocked. These results demonstrate that the excitation band at 437 nm was mainly contributed by Chl a , while the excitation band at 475.5 nm was mainly contributed by Chl b and Cars . The chlorophyll fluorescence excitation spectrum, therefore, could serve as a useful tool to describe specific characteristics of light absorption and energy transfer between light‐harvesting pigments. Copyright © 2015 John Wiley & Sons, Ltd.

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