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全血细胞的基因表达谱分析表明,在缺氧应激的金头鲷中,线粒体呼吸更为高效。

Gene expression profiling of whole blood cells supports a more efficient mitochondrial respiration in hypoxia-challenged gilthead sea bream ().

作者信息

Martos-Sitcha Juan Antonio, Bermejo-Nogales Azucena, Calduch-Giner Josep Alvar, Pérez-Sánchez Jaume

机构信息

Nutrigenomics and Fish Growth Endocrinology Group, Institute of Aquaculture Torre de la Sal, Consejo Superior de Investigaciones Científicas (IATS-CSIC), Ribera de Cabanes, E-12595 Castellón, Spain.

Present address: Endocrine Disruption and Toxicity of Contaminants, Department of Environment, INIA, Madrid, Spain.

出版信息

Front Zool. 2017 Jul 6;14:34. doi: 10.1186/s12983-017-0220-2. eCollection 2017.

Abstract

BACKGROUND

Acclimation to abiotic challenges, including decreases in O availability, requires physiological and anatomical phenotyping to accommodate the organism to the environmental conditions. The retention of a nucleus and functional mitochondria in mature fish red blood cells makes blood a promising tissue to analyse the transcriptome and metabolic responses of hypoxia-challenged fish in an integrative and non-invasive manner.

METHODS

Juvenile gilthead sea bream () were reared at 20-21 °C under normoxic conditions (> 85% O saturation) followed by exposure to a gradual decrease in water O concentration to 3.0 ppm (41-42% O saturation) for 24 h or 1.3 ppm (18-19% O saturation) for up to 4 h. Blood samples were collected at three different sampling points for haematological, biochemical and transcriptomic analysis.

RESULTS

Blood physiological hallmarks remained almost unaltered at 3.0 ppm, but the haematocrit and circulating levels of haemoglobin, glucose and lactate were consistently increased when fish were maintained below the limiting oxygen saturation at 1.3 ppm. These findings were concurrent with an increase in total plasma antioxidant activity and plasma cortisol levels, whereas the opposite trend was observed for growth-promoting factors, such as insulin-like growth factor I. Additionally, gene expression profiling of whole blood cells revealed changes in upstream master regulators of mitochondria ( and ), antioxidant enzymes ( and ), outer and inner membrane translocases ( and ), components of the mitochondrial dynamics system ( and ), apoptotic factors (), uncoupling proteins () and oxidative enzymes of fatty acid β-oxidation ( and ), the tricarboxylic acid cycle () and the oxidative phosphorylation pathway. The overall response is an extensive reduction in gene expression of almost all respiratory chain enzyme subunits of the five complexes, although mitochondrial-encoded catalytic subunits and nuclear-encoded regulatory subunits of Complex IV were primarily increased in hypoxic fish.

CONCLUSIONS

Our results demonstrate the re-adjustment of mitochondrial machinery at transcriptional level to cope with a decreased basal metabolic rate, consistent with a low risk of oxidative stress, diminished aerobic ATP production and higher O-carrying capacity. Taken together, these results suggest that whole blood cells can be used as a highly informative target tissue of metabolic condition.

摘要

背景

适应非生物挑战,包括氧气供应减少,需要进行生理和解剖表型分析,以使生物体适应环境条件。成熟鱼类红细胞中细胞核和功能性线粒体的保留,使得血液成为一个有前景的组织,可用于以综合且非侵入性的方式分析缺氧应激鱼类的转录组和代谢反应。

方法

将幼年金头鲷在20 - 21°C的常氧条件下(氧气饱和度> 85%)饲养,随后使其暴露于水中氧气浓度逐渐降至3.0 ppm(氧气饱和度41 - 42%)持续24小时,或降至1.3 ppm(氧气饱和度18 - 19%)长达4小时。在三个不同的采样点采集血样,用于血液学、生化和转录组分析。

结果

在3.0 ppm时,血液生理特征几乎未改变,但当鱼维持在1.3 ppm的极限氧气饱和度以下时,血细胞比容以及血红蛋白、葡萄糖和乳酸的循环水平持续升高。这些发现与血浆总抗氧化活性和血浆皮质醇水平的增加同时出现,而对于促进生长的因子,如胰岛素样生长因子I,则观察到相反的趋势。此外,全血细胞的基因表达谱分析揭示了线粒体上游主调节因子(和)、抗氧化酶(和)、外膜和内膜转位酶(和)、线粒体动力学系统成分(和)、凋亡因子()、解偶联蛋白()以及脂肪酸β - 氧化(和)、三羧酸循环()和氧化磷酸化途径的氧化酶的变化。总体反应是五个复合物的几乎所有呼吸链酶亚基的基因表达大幅降低,尽管在缺氧鱼类中,复合物IV的线粒体编码催化亚基和核编码调节亚基主要增加。

结论

我们的结果表明,线粒体机制在转录水平上进行了重新调整,以应对基础代谢率的降低,这与氧化应激风险低、有氧ATP产生减少和更高的氧气携带能力一致。综上所述,这些结果表明全血细胞可作为代谢状况的高度信息丰富的靶组织。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/295c/5501551/d5d608352d29/12983_2017_220_Fig1_HTML.jpg

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