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塞内加尔鳎发育过程中miRNA转录组的热可塑性

Thermal plasticity of the miRNA transcriptome during Senegalese sole development.

作者信息

Campos Catarina, Sundaram Arvind Y M, Valente Luisa M P, Conceição Luis E C, Engrola Sofia, Fernandes Jorge M O

机构信息

Faculty of Biosciences and Aquaculture, University of Nordland, Bodø 8049, Norway.

出版信息

BMC Genomics. 2014 Jun 25;15(1):525. doi: 10.1186/1471-2164-15-525.

Abstract

BACKGROUND

Several miRNAs are known to control myogenesis in vertebrates. Some of them are specifically expressed in muscle while others have a broader tissue expression but are still involved in establishing the muscle phenotype. In teleosts, water temperature markedly affects embryonic development and larval growth. It has been previously shown that higher embryonic temperatures promoted faster development and increased size of Senegalese sole (Solea senegalensis) larvae relatively to a lower temperature. The role of miRNAs in thermal-plasticity of growth is hitherto unknown. Hence, we have used high-throughput SOLiD sequencing to determine potential changes in the miRNA transcriptome in Senegalese sole embryos that were incubated at 15°C or 21°C until hatching and then reared at a common temperature of 21°C.

RESULTS

We have identified 320 conserved miRNAs in Senegalese sole, of which 48 had not been previously described in teleosts. mir-17a-5p, mir-26a, mir-130c, mir-206-3p, mir-181a-5p, mir-181a-3p and mir-199a-5p expression levels were further validated by RT- qPCR. The majority of miRNAs were dynamically expressed during early development, with peaks of expression at pre-metamorphosis or metamorphosis. Also, a higher incubation temperature (21°C) was associated with expression of some miRNAs positively related with growth (e.g., miR-17a, miR-181-5p and miR-206) during segmentation and at hatching. Target prediction revealed that these miRNAs may regulate myogenesis through MAPK and mTOR pathways. Expression of miRNAs involved in lipid metabolism and energy production (e.g., miR-122) also differed between temperatures. A miRNA that can potentially target calpain (miR-181-3p), and therefore negatively regulate myogenesis, was preferentially expressed during segmentation at 15°C compared to 21°C.

CONCLUSIONS

Temperature has a strong influence on expression of miRNAs during embryonic and larval development in fish. Higher expression levels of miR-17a, miR-181-5p and miR-206-3p and down-regulation of miR-181a-3p at 21°C may promote myogenesis and are in agreement with previous studies in Senegalese sole, which reported enhanced growth at higher embryonic temperatures compared to 15°C. Moreover, miRNAs involved in lipid metabolism and energy production may also contribute to increased larval growth at 21°C compared to 15°C. Taken together, our data indicate that miRNAs may play a role in temperature-induced phenotypic plasticity of growth in teleosts.

摘要

背景

已知几种微小RNA(miRNA)可调控脊椎动物的肌生成。其中一些在肌肉中特异性表达,而其他一些虽具有更广泛的组织表达,但仍参与肌肉表型的建立。在硬骨鱼中,水温显著影响胚胎发育和幼体生长。先前研究表明,相较于较低温度,较高的胚胎温度可促进塞内加尔鳎(Solea senegalensis)幼体更快发育并增大体型。miRNA在生长热可塑性中的作用迄今尚不清楚。因此,我们使用高通量SOLiD测序来确定在15°C或21°C下孵化直至孵化,然后在21°C的共同温度下饲养的塞内加尔鳎胚胎中miRNA转录组的潜在变化。

结果

我们在塞内加尔鳎中鉴定出320种保守的miRNA,其中48种此前未在硬骨鱼中描述过。通过RT-qPCR进一步验证了mir-17a-5p、mir-26a、mir-130c、mir-206-3p、mir-181a-5p、mir-181a-3p和mir-199a-5p的表达水平。大多数miRNA在早期发育过程中动态表达,在变态前或变态时表达达到峰值。此外,较高的孵化温度(21°C)与一些在体节形成期和孵化时与生长呈正相关的miRNA(如miR-17a、miR-181-5p和miR-206)的表达有关。靶标预测显示,这些miRNA可能通过MAPK和mTOR途径调控肌生成。参与脂质代谢和能量产生的miRNA(如miR-122)的表达在不同温度下也有所不同。一种可能靶向钙蛋白酶(miR-181-3p)从而负调控肌生成的miRNA,在15°C时相较于21°C在体节形成期优先表达。

结论

温度对鱼类胚胎和幼体发育过程中miRNA的表达有强烈影响。与先前在塞内加尔鳎中的研究一致,21°C时miR-17a、miR-181-5p和miR-206-3p的较高表达水平以及miR-181a-3p的下调可能促进肌生成,该研究报道与15°C相比,较高的胚胎温度下生长增强。此外,与15°C相比,参与脂质代谢和能量产生的miRNA也可能有助于21°C时幼体生长增加。综上所述,我们的数据表明miRNA可能在硬骨鱼温度诱导的生长表型可塑性中发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4fe/4097167/832ea75bfb6c/12864_2013_6233_Fig1_HTML.jpg

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