Symbiont-Mediated Metabolic Shift in the Sea Anemone Anthopleura elegantissima

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Tyler J. Carrier, Holland Elder, Jason Macrander, James L. Dimond, Brian L. Bingham, Adam M. Reitzel
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Abstract

Coral reefs and their photosynthetic algae form one of the most ecologically and economically impactful symbioses in the animal kingdom. The stability of this nutritional mutualism and this ecosystem is, however, at risk due to increasing sea surface temperatures that cause corals to expel their symbionts. Symbioses with these microeukaryotes have independently evolved multiple times, and non-coral cnidarians (e.g., sea anemones) serve as a valuable and insightful comparative system due to their ease of husbandry in the laboratory and their ability to shuffle different strains of their photosymbionts to acclimate to thermal conditions. This breadth of symbiont shuffling is exemplified by the sea anemone Anthopleura elegantissima , which naturally occurs in symbiosis with the dinoflagellate Breviolum muscatinei (formerly Symbiodinium) or the chlorophyte Elliptochloris marina as well as being aposymbiotic. Here, we assembled a draft genome and used multi-omics to characterise multiple physiological levels of each phenotype. We find that A. elegantissima has symbiont-specific transcriptional and metabolomic signatures, but a similar bacterial community dominated by a single Sphingomonas species that is commonly found in the cnidarian microbiome. Symbiosis with either eukaryotic symbiont resulted in differential gene expression and metabolic abundance for diverse processes spanning metabolism and immunity to reproduction and development, with some of these processes being unique to either symbiont. The ability to culture A. elegantissima with its phylogenetically divergent photosymbionts and perform experimental manipulations makes A. elegantissima another tractable sea anemone system to decode the symbiotic conversations of coral reef ecosystems and aid in wider conservation efforts.

Abstract Image

共生体介导的海葵代谢转变。
珊瑚礁和它们的光合藻类构成了动物王国中最具生态和经济影响力的共生关系之一。然而,这种营养共生关系和生态系统的稳定性正处于危险之中,因为海水表面温度的升高导致珊瑚排出它们的共生体。与这些微真核生物的共生关系已经独立进化了多次,非珊瑚刺胞动物(例如海葵)作为一个有价值和有洞察力的比较系统,因为它们易于在实验室中饲养,并且能够洗洗不同菌株的光共生体以适应热条件。这种共生体洗牌的广度以海葵Anthopleura elegantissima为例,它自然地与双鞭藻Breviolum muscatinei(以前的Symbiodinium)或绿藻Elliptochloris marina共生,同时也是非共生的。在这里,我们组装了一个草图基因组,并使用多组学来表征每种表型的多个生理水平。我们发现a . elegantissima具有共生体特异性转录和代谢组学特征,但类似的细菌群落由单一鞘氨单胞菌物种主导,该物种常见于刺胞动物微生物组中。与任何一种真核共生体的共生都会导致不同过程的基因表达和代谢丰度的差异,包括代谢和生殖和发育免疫,其中一些过程对任何一种共生体都是独特的。培养A. elegantissima及其系统发育上不同的光共生体并进行实验操作的能力使A. elegantissima成为另一个易于处理的海葵系统,可以解码珊瑚礁生态系统的共生对话,并有助于更广泛的保护工作。
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来源期刊
Molecular Ecology
Molecular Ecology 生物-进化生物学
CiteScore
8.40
自引率
10.20%
发文量
472
审稿时长
1 months
期刊介绍: Molecular Ecology publishes papers that utilize molecular genetic techniques to address consequential questions in ecology, evolution, behaviour and conservation. Studies may employ neutral markers for inference about ecological and evolutionary processes or examine ecologically important genes and their products directly. We discourage papers that are primarily descriptive and are relevant only to the taxon being studied. Papers reporting on molecular marker development, molecular diagnostics, barcoding, or DNA taxonomy, or technical methods should be re-directed to our sister journal, Molecular Ecology Resources. Likewise, papers with a strongly applied focus should be submitted to Evolutionary Applications. Research areas of interest to Molecular Ecology include: * population structure and phylogeography * reproductive strategies * relatedness and kin selection * sex allocation * population genetic theory * analytical methods development * conservation genetics * speciation genetics * microbial biodiversity * evolutionary dynamics of QTLs * ecological interactions * molecular adaptation and environmental genomics * impact of genetically modified organisms
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