共生体同一性对热应激模式刺胞动物蛋白质组学和代谢组学响应的影响

IF 4.3 2区 生物学 Q2 MICROBIOLOGY
Bobby Lust, Jennifer L. Matthews, Clinton A. Oakley, Robert E. Lewis, Himasha Mendis, Lifeng Peng, Arthur R. Grossman, Virginia M. Weis, Simon K. Davy
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引用次数: 0

摘要

我们研究了共生体身份和热应激对刺胞-鞭毛藻共生中宿主代谢组和蛋白质组的影响。用其同源(即本地)共生体Breviolum minutum或异源(即非本地)共生体(Symbiodinium microadriaticum;杜鲁沙(Durusdinium trenchii)和热应力。综合代谢组学和蛋白质组学分析表征了共生体之间宿主的热反应,明确证据表明,在温度胁迫下,寄主体内的异种共生体营养剥夺和细胞应激增强。在控制温度下,寄主代谢组有部分差异;然而,热胁迫导致含有这两种异种共生体的海葵的代谢组变得更相似,更不同于含有B. minutum的海葵。虽然这些模式可以部分解释为先天的共生特异性差异,但它们也可能反映了共生密度的差异,如在控制条件下,D. trenchii和S. microadriatium的密度达到了B. minutum的60%和15%,在升高的温度下,只有D. trenchii定植的海葵漂白(损失60%)。我们的发现增加了越来越多的文献,这些文献强调了伴侣转换作为适应全球变暖的一种手段的生理限制。然而,我们也提供了初步的证据表明,在持续的共生后,异源共生体(D. trenchii)的代谢功能得到改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Influence of Symbiont Identity on the Proteomic and Metabolomic Responses of the Model Cnidarian Aiptasia to Thermal Stress

The Influence of Symbiont Identity on the Proteomic and Metabolomic Responses of the Model Cnidarian Aiptasia to Thermal Stress

We examined the effects of symbiont identity and heat stress on the host metabolome and proteome in the cnidarian–dinoflagellate symbiosis. Exaiptasia diaphana (‘Aiptasia’) was inoculated with its homologous (i.e., native) symbiont Breviolum minutum or a heterologous (i.e., non-native) symbiont (Symbiodinium microadriaticum; Durusdinium trenchii) and thermally stressed. Integrated metabolome and proteome analyses characterised host thermal responses between symbioses, with clear evidence of enhanced nutritional deprivation and cellular stress in hosts harbouring heterologous symbionts following temperature stress. Host metabolomes were partially distinct at the control temperature; however, thermal stress caused metabolomes of anemones containing the two heterologous symbionts to become more alike and more distinct from those containing B. minutum. While these patterns could be partly explained by innate symbiont-specific differences, they may also reflect differences in symbiont density, as under control conditions D. trenchii attained 60% and S. microadriaticum 15% of the density attained by B. minutum, and at elevated temperature only D. trenchii–colonised anemones bleached (60% loss). Our findings add to a growing literature that highlights the physiological limits of partner switching as a means of adaptation to global warming. However, we also provide tentative evidence for improved metabolic functioning with a heterologous symbiont (D. trenchii) after sustained symbiosis.

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来源期刊
Environmental microbiology
Environmental microbiology 环境科学-微生物学
CiteScore
9.90
自引率
3.90%
发文量
427
审稿时长
2.3 months
期刊介绍: Environmental Microbiology provides a high profile vehicle for publication of the most innovative, original and rigorous research in the field. The scope of the Journal encompasses the diversity of current research on microbial processes in the environment, microbial communities, interactions and evolution and includes, but is not limited to, the following: the structure, activities and communal behaviour of microbial communities microbial community genetics and evolutionary processes microbial symbioses, microbial interactions and interactions with plants, animals and abiotic factors microbes in the tree of life, microbial diversification and evolution population biology and clonal structure microbial metabolic and structural diversity microbial physiology, growth and survival microbes and surfaces, adhesion and biofouling responses to environmental signals and stress factors modelling and theory development pollution microbiology extremophiles and life in extreme and unusual little-explored habitats element cycles and biogeochemical processes, primary and secondary production microbes in a changing world, microbially-influenced global changes evolution and diversity of archaeal and bacterial viruses new technological developments in microbial ecology and evolution, in particular for the study of activities of microbial communities, non-culturable microorganisms and emerging pathogens
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