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石珊瑚热应激表型组的多组学特征分析

Multi-omic characterization of the thermal stress phenome in the stony coral .

作者信息

Williams Amanda, Pathmanathan Jananan S, Stephens Timothy G, Su Xiaoyang, Chiles Eric N, Conetta Dennis, Putnam Hollie M, Bhattacharya Debashish

机构信息

Microbial Biology Graduate Program, Rutgers University, New Brunswick, United States.

Department of Biochemistry and Microbiology, Rutgers University, New Brunswick, United States.

出版信息

PeerJ. 2021 Nov 10;9:e12335. doi: 10.7717/peerj.12335. eCollection 2021.

Abstract

BACKGROUND

Corals, which form the foundation of biodiverse reef ecosystems, are under threat from warming oceans. Reefs provide essential ecological services, including food, income from tourism, nutrient cycling, waste removal, and the absorption of wave energy to mitigate erosion. Here, we studied the coral thermal stress response using network methods to analyze transcriptomic and polar metabolomic data generated from the Hawaiian rice coral . Coral nubbins were exposed to ambient or thermal stress conditions over a 5-week period, coinciding with a mass spawning event of this species. The major goal of our study was to expand the inventory of thermal stress-related genes and metabolites present in and to study gene-metabolite interactions. These interactions provide the foundation for functional or genetic analysis of key coral genes as well as provide potentially diagnostic markers of pre-bleaching stress. A secondary goal of our study was to analyze the accumulation of sex hormones prior to and during mass spawning to understand how thermal stress may impact reproductive success in .

METHODS

was exposed to thermal stress during its spawning cycle over the course of 5 weeks, during which time transcriptomic and polar metabolomic data were collected. We analyzed these data streams individually, and then integrated both data sets using MAGI (Metabolite Annotation and Gene Integration) to investigate molecular transitions and biochemical reactions.

RESULTS

Our results reveal the complexity of the thermal stress phenome in , which includes many genes involved in redox regulation, biomineralization, and reproduction. The size and number of modules in the gene co-expression networks expanded from the initial stress response to the onset of bleaching. The later stages involved the suppression of metabolite transport by the coral host, including a variety of sodium-coupled transporters and a putative ammonium transporter, possibly as a response to reduction in algal productivity. The gene-metabolite integration data suggest that thermal treatment results in the activation of animal redox stress pathways involved in quenching molecular oxygen to prevent an overabundance of reactive oxygen species. Lastly, evidence that thermal stress affects reproductive activity was provided by the downregulation of genes and the irregular production of sex hormones during the mass spawning cycle. Overall, redox regulation and metabolite transport are key components of the coral animal thermal stress phenome. Mass spawning was highly attenuated under thermal stress, suggesting that global climate change may negatively impact reproductive behavior in this species.

摘要

背景

珊瑚是生物多样的珊瑚礁生态系统的基础,正受到海洋变暖的威胁。珊瑚礁提供重要的生态服务,包括食物、旅游收入、营养物质循环、废物清除以及吸收波浪能量以减轻侵蚀。在此,我们使用网络方法研究了珊瑚的热应激反应,以分析从夏威夷稻珊瑚产生的转录组学和极性代谢组学数据。珊瑚断枝在5周时间内暴露于环境或热应激条件下,这与该物种的大规模产卵事件同时发生。我们研究的主要目标是扩充存在于[物种名称未提及]中的热应激相关基因和代谢物的清单,并研究基因 - 代谢物相互作用。这些相互作用为关键珊瑚基因的功能或遗传分析提供了基础,同时也提供了潜在的白化前应激诊断标志物。我们研究的次要目标是分析大规模产卵之前和期间性激素的积累情况,以了解热应激如何影响[物种名称未提及]的繁殖成功率。

方法

[物种名称未提及]在其产卵周期内的5周时间里暴露于热应激条件下,在此期间收集转录组学和极性代谢组学数据。我们分别分析了这些数据流,然后使用MAGI(代谢物注释和基因整合)整合两个数据集,以研究分子转变和生化反应。

结果

我们的结果揭示了[物种名称未提及]热应激表型组的复杂性,其中包括许多参与氧化还原调节、生物矿化和繁殖的基因。基因共表达网络中模块的大小和数量从初始应激反应到白化开始时有所增加。后期阶段涉及珊瑚宿主对代谢物运输的抑制,包括多种钠偶联转运蛋白和一种假定的铵转运蛋白,这可能是对藻类生产力下降的一种反应。基因 - 代谢物整合数据表明,热处理导致参与淬灭分子氧以防止活性氧过量的动物氧化还原应激途径被激活。最后,在大规模产卵周期中[物种名称未提及]基因的下调和性激素的不规则产生提供了热应激影响繁殖活动的证据。总体而言,氧化还原调节和代谢物运输是珊瑚动物热应激表型组的关键组成部分。在热应激下大规模产卵受到高度抑制,这表明全球气候变化可能对该物种的繁殖行为产生负面影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d6ee/8590396/a77d23413774/peerj-09-12335-g001.jpg

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