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Optical properties of corals distort variable chlorophyll fluorescence measurements

DOI:10.1104/pp.18.01275 期刊:Plant Physiology 出版年份:2019 更新时间:2025-09-19 17:15:36
摘要: Pulse amplitude modulated (PAM) fluorimetry is widely used in photobiological studies of corals, as it rapidly provides numerous photosynthetic parameters to assess coral ecophysiology. Coral optics studies have revealed the presence of light gradients in corals, which are strongly affected by light scattering in coral tissue and skeleton. We investigated whether coral optics affects variable chlorophyll fluorescence measurements and derived photosynthetic parameters by developing planar hydrogel slabs with immobilized microalgae and with bulk optical properties similar to those of different types of corals. Our results show that PAM-based measurements of photosynthetic parameters differed substantially between hydrogels with different degrees of light scattering but identical microalgal density, yielding deviations in apparent maximal electron transport rates by a factor of 2. Furthermore, system settings such as the measuring light intensity affected F0, Fm and Fv/Fm in hydrogels with identical light absorption but different degrees of light scattering. Likewise, differences in microalgal density affected variable chlorophyll fluorescence parameters, where higher algal densities led to greater Fv/Fm values and relative electron transport rates. These results have important implications for the use of variable chlorophyll fluorimetry in ecophysiological studies of coral stress and photosynthesis, as well as other optically dense systems such as plant tissue and biofilms.
作者: Daniel Wangpraseurt,Mads Lichtenberg,Steven L Jacques,Anthony WD Larkum,Michael Kühl
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Investigating whether coral optics affects variable chlorophyll fluorescence measurements and derived photosynthetic parameters.

Coral optical properties significantly distort variable chlorophyll fluorescence measurements, affecting parameters like F0, Fm, Fv/Fm, and rETR. Light scattering and absorption differences lead to misinterpretations of photosynthetic efficiency, highlighting the need for caution in interpreting PAM-based data in corals and other optically dense systems. The development of optical phantoms and numerical models provides a foundation for better measurement protocols and corrections.

The study is limited to simplified hydrogel models of corals, which may not fully capture the complexity of natural coral tissues. The optical model (Chf-MC) is restricted to a 1-layer system, and future work should include multiple tissue layers and 3D architectures. Variability in natural coral optical properties and the need for detailed quantification of inherent optical parameters are also limitations.

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