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热应激的转录组分析揭示了应激和代谢基因的差异表达。

Transcriptomic Analysis of Thermally Stressed Reveals Differential Expression of Stress and Metabolism Genes.

作者信息

Gierz Sarah L, Forêt Sylvain, Leggat William

机构信息

College of Public Health, Medical and Veterinary Sciences, James Cook University, TownsvilleQLD, Australia; Comparative Genomics Centre, James Cook University, TownsvilleQLD, Australia.

ARC Centre of Excellence for Coral Reef Studies, James Cook University, TownsvilleQLD, Australia; Evolution, Ecology and Genetics, Research School of Biology, Australian National University, CanberraACT, Australia.

出版信息

Front Plant Sci. 2017 Feb 28;8:271. doi: 10.3389/fpls.2017.00271. eCollection 2017.

Abstract

Endosymbioses between dinoflagellate algae ( sp.) and scleractinian coral species form the foundation of coral reef ecosystems. The coral symbiosis is highly susceptible to elevated temperatures, resulting in coral bleaching, where the algal symbiont is released from host cells. This experiment aimed to determine the transcriptional changes in cultured , to better understand the response of cellular mechanisms under future temperature conditions. Cultures were exposed to elevated temperatures (average 31°C) or control conditions (24.5°C) for a period of 28 days. Whole transcriptome sequencing of cells on days 4, 19, and 28 were used to identify differentially expressed genes under thermal stress. A large number of genes representing 37.01% of the transcriptome (∼23,654 unique genes, FDR < 0.05) with differential expression were detected at no less than one of the time points. Consistent with previous studies of gene expression, fold changes across the transcriptome were low, with 92.49% differentially expressed genes at ≤2-fold change. The transcriptional response included differential expression of genes encoding stress response components such as the antioxidant network and molecular chaperones, cellular components such as core photosynthesis machinery, integral light-harvesting protein complexes and enzymes such as fatty acid desaturases. Differential expression of genes encoding glyoxylate cycle enzymes were also found, representing the first report of this in . As photosynthate transfer from to coral hosts provides up to 90% of a coral's daily energy requirements, the implications of altered metabolic processes from exposure to thermal stress found in this study on coral- associations are unknown and should be considered when assessing the stability of the symbiotic relationship under future climate conditions.

摘要

甲藻(sp.)与石珊瑚物种之间的内共生关系构成了珊瑚礁生态系统的基础。珊瑚共生关系对温度升高高度敏感,会导致珊瑚白化,即藻类共生体从宿主细胞中释放出来。本实验旨在确定培养的[具体物种未给出]的转录变化,以便更好地了解未来温度条件下细胞机制的反应。培养物在高温(平均31°C)或对照条件(24.5°C)下暴露28天。在第4天、第19天和第28天对[具体物种未给出]细胞进行全转录组测序,以鉴定热应激下差异表达的基因。在至少一个时间点检测到大量差异表达基因,占转录组的37.01%(约23,654个独特基因,FDR<0.05)。与之前对[具体物种未给出]基因表达的研究一致,整个转录组的倍数变化较低,92.49%的差异表达基因变化倍数≤2倍。转录反应包括编码应激反应成分(如抗氧化网络和分子伴侣)的基因、细胞成分(如核心光合作用机制、完整的光捕获蛋白复合体)以及脂肪酸去饱和酶等酶的差异表达。还发现了编码乙醛酸循环酶的基因的差异表达,这是在[具体物种未给出]中的首次报道。由于从[具体物种未给出]到珊瑚宿主的光合产物转移提供了珊瑚每日能量需求的90%,本研究中发现的热应激导致的代谢过程改变对珊瑚-[具体物种未给出]共生关系的影响尚不清楚,在评估未来气候条件下共生关系的稳定性时应予以考虑。

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