Genome-wide identification of brain miRNAs in response to high-intensity intermittent swimming training in Rattus norvegicus by deep sequencing

IF 2.946 Q3 Biochemistry, Genetics and Molecular Biology BMC Molecular Biology Pub Date : 2019-01-15 DOI:10.1186/s12867-019-0120-4
Yanhong Zhao, Anmin Zhang, Yanfang Wang, Shuping Hu, Ruiping Zhang, Shuaiwei Qian
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引用次数: 5

Abstract

Physical exercise can improve brain function by altering brain gene expression. The expression mechanisms underlying the brain’s response to exercise still remain unknown. miRNAs as vital regulators of gene expression may be involved in regulation of brain genes in response to exercise. However, as yet, very little is known about exercise-responsive miRNAs in brain.

We constructed two comparative small RNA libraries of rat brain from a high-intensity intermittent swimming training (HIST) group and a normal control (NC) group. Using deep sequencing and bioinformatics analysis, we identified 2109 (1700 from HIST, 1691 from NC) known and 55 (50 from HIST, 28 from NC) novel candidate miRNAs. Among them, 34 miRNAs were identified as significantly differentially expressed in response to HIST, 16 were up-regulated and 18 were down-regulated. The results showed that all members of mir-200 family were strongly up-regulated, implying mir-200 family may play very important roles in HIST response mechanisms of rat brain. A total of 955 potential target genes of these 34 exercise-responsive miRNAs were identified from rat genes. Most of them are directly involved in the development and regulatory function of brain or nerve. Many acknowledged exercise-responsive brain genes such as Bdnf, Igf-1, Vgf, Ngf c-Fos, and Ntf3 etc. could be targeted by exercise-responsive miRNAs. Moreover, qRT-PCR and SABC immunohistochemical analysis further confirm the reliability of the expression of miRNAs and their targets.

This study demonstrated that physical exercise could induce differential expression of rat brain miRNAs and 34 exercise-responsive miRNAs were identified in rat brain. Our results suggested that exercise-responsive miRNAs could play important roles in regulating gene expression of rat brain in response to exercise.

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基于深度测序的褐家鼠高强度间歇游泳训练脑mirna全基因组鉴定
体育锻炼可以通过改变大脑基因表达来改善大脑功能。大脑对运动的反应背后的表达机制仍然未知。mirna作为基因表达的重要调节因子可能参与了大脑基因对运动反应的调节。然而,到目前为止,人们对大脑中运动反应性mirna知之甚少。我们从高强度间歇游泳训练(HIST)组和正常对照(NC)组构建了两个比较小的脑RNA文库。通过深度测序和生物信息学分析,我们确定了2109个(1700个来自HIST, 1691个来自NC)和55个(50个来自HIST, 28个来自NC)新的候选mirna。其中,34个mirna在HIST反应中被鉴定为显著差异表达,16个上调,18个下调。结果显示,mir-200家族的所有成员均被强烈上调,表明mir-200家族可能在大鼠脑HIST反应机制中发挥了非常重要的作用。从大鼠基因中共鉴定出这34种运动反应性mirna的955个潜在靶基因。它们大多直接参与脑或神经的发育和调节功能。许多公认的运动反应性脑基因,如Bdnf、Igf-1、Vgf、Ngf c-Fos和Ntf3等,都可以被运动反应性mirna靶向。此外,qRT-PCR和SABC免疫组化分析进一步证实了mirna及其靶点表达的可靠性。本研究表明,体育锻炼可以诱导大鼠脑mirna的差异表达,并在大鼠脑中鉴定出34种运动反应性mirna。我们的研究结果表明,运动反应性miRNAs可能在调节大鼠大脑对运动反应的基因表达中发挥重要作用。
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来源期刊
BMC Molecular Biology
BMC Molecular Biology 生物-生化与分子生物学
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Molecular Biology is an open access journal publishing original peer-reviewed research articles in all aspects of DNA and RNA in a cellular context, encompassing investigations of chromatin, replication, recombination, mutation, repair, transcription, translation and RNA processing and function.
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