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珊瑚白化历史的代谢组学特征。

Metabolomic signatures of coral bleaching history.

机构信息

Hawai'i Institute of Marine Biology, University of Hawai'i at Mānoa, Kāne'ohe, HI, USA.

Rosenstiel School of Marine and Atmospheric Science, University of Miami, Miami, FL, USA.

出版信息

Nat Ecol Evol. 2021 Apr;5(4):495-503. doi: 10.1038/s41559-020-01388-7. Epub 2021 Feb 8.

DOI:10.1038/s41559-020-01388-7
PMID:33558733
Abstract

Coral bleaching has a profound impact on the health and function of reef ecosystems, but the metabolomic effects of coral bleaching are largely uncharacterized. Here, untargeted metabolomics was used to analyse pairs of adjacent Montipora capitata corals that had contrasting bleaching phenotypes during a severe bleaching event in 2015. When these same corals were sampled four years later while visually healthy, there was a strong metabolomic signature of bleaching history. This was primarily driven by betaine lipids from the symbiont, where corals that did not bleach were enriched in saturated lyso-betaine lipids. Immune modulator molecules were also altered by bleaching history in both the coral host and the algal symbiont, suggesting a shared role in partner choice and bleaching response. Metabolomics from a separate set of validation corals was able to predict the bleaching phenotype with 100% accuracy. Experimental temperature stress induced phenotype-specific responses, which magnified differences between historical bleaching phenotypes. These findings indicate that natural bleaching susceptibility is manifested in the biochemistry of both the coral animal and its algal symbiont. This metabolome difference is stable through time and results in different physiological responses to temperature stress. This work provides insight into the biochemical mechanisms of coral bleaching and presents a valuable new tool for resilience-based reef restoration.

摘要

珊瑚白化对珊瑚礁生态系统的健康和功能有着深远的影响,但珊瑚白化的代谢组学效应在很大程度上还没有被描述。在这里,我们使用非靶向代谢组学分析了在 2015 年一次严重白化事件中具有相反白化表型的相邻鹿角杯形珊瑚对。当这些珊瑚在四年后被取样时,它们的外观仍然健康,这表明存在强烈的白化历史代谢组学特征。这主要是由共生体中的甜菜碱脂质驱动的,其中没有白化的珊瑚富含饱和溶血甜菜碱脂质。免疫调节剂分子也因白化历史而在珊瑚宿主和藻类共生体中发生改变,这表明它们在伴侣选择和白化反应中具有共同作用。来自另一组验证珊瑚的代谢组学能够以 100%的准确率预测白化表型。实验温度胁迫诱导了表型特异性反应,这加剧了历史白化表型之间的差异。这些发现表明,自然白化易感性表现在珊瑚动物及其藻类共生体的生物化学中。这种代谢组差异是稳定的,并且导致对温度胁迫的不同生理反应。这项工作为珊瑚白化的生化机制提供了深入的了解,并为基于恢复力的珊瑚礁恢复提供了一个有价值的新工具。

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Feature-based molecular networking in the GNPS analysis environment.基于特征的分子网络在 GNPS 分析环境中的应用。
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A multiomic analysis of in situ coral-turf algal interactions.原位珊瑚-草皮藻相互作用的多组学分析
珊瑚抗白化的代际代谢组学特征
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Extreme Events Contributing to Tipping Elements and Tipping Points.导致临界要素和临界点的极端事件。
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