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Tidal heat pulses on a reef trigger a fine-tuned transcriptional response in corals to maintain homeostasis

机译:礁石上的潮汐热脉冲触发珊瑚的微调转录反应以维持体内稳态

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摘要

For reef-building corals, extreme stress exposure can result in loss of endosymbionts, leaving colonies bleached. However, corals in some habitats are commonly exposed to natural cycles of sub-bleaching stress, often leading to higher stress tolerance. We monitored transcription in the tabletop coral Acropora hyacinthus daily for 17 days over a strong tidal cycle that included extreme temperature spikes, and show that increases in temperature above 30.5°C triggered a strong transcriptional response. The transcriptomic time series data allowed us to identify a set of genes with coordinated expression that were activated only on days with strong tides, high temperature, and large diel pH and oxygen changes. The responsive genes are enriched for gene products essential to the unfolded protein response, an ancient cellular response to endoplasmic reticulum stress. After the temporary heat pulses passed, expression of these genes immediately decreased, suggesting that homeostasis was restored to the endoplasmic reticulum. In a laboratory temperature stress experiment, we found that the expression of these environmentally responsive genes increased as corals bleached, showing that the unfolded protein response becomes more intense during more severe stress. Our results point to the unfolded protein response as a first line of defense that acroporid corals use when coping with environmental stress on the reef, thus enhancing our understanding of coral stress physiology during a time of major concern for reefs.
机译:对于造礁珊瑚,暴露于极端压力下会导致内共生菌损失,使菌落变白。但是,某些生境中的珊瑚通常会遭受亚漂白胁迫的自然循环,通常会导致更高的胁迫耐受性。我们在包括极端温度峰值在内的强烈潮汐周期中每天监测台式珊瑚风信子每天17天的转录,并显示高于30.5°C的温度引发强烈的转录反应。转录组时间序列数据使我们能够鉴定出一组具有协调表达的基因,这些基因仅在涨潮,高温,diel pH和氧气变化大的几天才被激活。反应性基因丰富了对未折叠的蛋白质反应(一种古老的细胞对内质网应激的反应)所必需的基因产物。在暂时的热脉冲通过后,这些基因的表达立即下降,表明体内稳态恢复到内质网。在实验室温度胁迫实验中,我们发现随着珊瑚的漂白,这些环境响应基因的表达增加,这表明在更严重的胁迫下,展开的蛋白质反应变得更加强烈。我们的结果表明,展开的蛋白质反应是当应对礁石上的环境压力时,顶孢珊瑚使用的第一道防线,从而增强了我们对珊瑚礁的主要关注时期对珊瑚应力生理的理解。

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