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水的振动模式预测了湖泊和海洋中光合作用的光谱生态位。

Vibrational modes of water predict spectral niches for photosynthesis in lakes and oceans.

机构信息

Department of Water & Climate Risk, Institute for Environmental Studies (IVM), VU University Amsterdam, Amsterdam, the Netherlands.

Department of Freshwater and Marine Ecology (FAME), Institute for Biodiversity and Ecosystem Dynamics, University of Amsterdam, Amsterdam, the Netherlands.

出版信息

Nat Ecol Evol. 2021 Jan;5(1):55-66. doi: 10.1038/s41559-020-01330-x. Epub 2020 Nov 9.

DOI:10.1038/s41559-020-01330-x
PMID:33168993
Abstract

Stretching and bending vibrations of water molecules absorb photons of specific wavelengths, a phenomenon that constrains light energy available for aquatic photosynthesis. Previous work suggested that these absorption properties of water create a series of spectral niches but the theory was still too simplified to enable prediction of the spectral niches in real aquatic ecosystems. Here, we show with a state-of-the-art radiative transfer model that the vibrational modes of the water molecule delineate five spectral niches, in the violet, blue, green, orange and red parts of the spectrum. These five niches are effectively captured by chlorophylls and phycobilin pigments of cyanobacteria and their eukaryotic descendants. Global distributions of the spectral niches are predicted by satellite remote sensing and validated with observed large-scale distribution patterns of cyanobacterial pigment types. Our findings provide an elegant explanation for the biogeographical distributions of photosynthetic pigments across the lakes and oceans of our planet.

摘要

水分子的伸缩和弯曲振动会吸收特定波长的光子,这一现象限制了水生光合作用可用的光能。先前的研究表明,水的这些吸收特性形成了一系列光谱生态位,但该理论仍然过于简化,无法预测实际水生生态系统中的光谱生态位。在这里,我们利用最先进的辐射传输模型表明,水分子的振动模式划定了光谱的五个生态位,分别在光谱的紫色、蓝色、绿色、橙色和红色部分。这五个生态位被蓝藻及其真核后代的叶绿素和藻胆素色素有效地捕获。通过卫星遥感预测了这些生态位的全球分布,并通过观察到的蓝藻色素类型的大规模分布模式进行了验证。我们的研究结果为光合作用色素在我们星球的湖泊和海洋中的生物地理分布提供了一个优雅的解释。

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Limnol Oceanogr. 2018 Nov;63(6):2661-2680. doi: 10.1002/lno.10967.
2
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Ecology. 2020 Mar;101(3):e02951. doi: 10.1002/ecy.2951. Epub 2020 Feb 3.
3
Chromatic Acclimation in Cyanobacteria: A Diverse and Widespread Process for Optimizing Photosynthesis.
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Nat Commun. 2025 Apr 30;16(1):4059. doi: 10.1038/s41467-025-59386-x.
4
Paradox of the Sub-Plankton: Plausible Mechanisms and Open Problems Underlying Strain-Level Diversity in Microbial Communities.亚浮游生物的悖论:微生物群落中菌株水平多样性背后的合理机制与开放问题
Environ Microbiol. 2025 Apr;27(4):e70094. doi: 10.1111/1462-2920.70094.
5
Chromatic acclimation shapes phytoplankton biogeography.色素适应塑造了浮游植物的生物地理学。
Sci Adv. 2025 Feb 21;11(8):eadr9609. doi: 10.1126/sciadv.adr9609. Epub 2025 Feb 19.
6
Light quality induces a shift in coccosphere morphology in .光质会导致[具体生物名称]中球石藻球形态发生变化。 (原文中“in.”后缺少具体内容)
J Plankton Res. 2024 Jun 12;46(4):383-386. doi: 10.1093/plankt/fbae032. eCollection 2024 Jul-Aug.
7
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PLoS One. 2024 Jul 22;19(7):e0307549. doi: 10.1371/journal.pone.0307549. eCollection 2024.
8
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6
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