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牙鲆肌肉生长发育相关lncRNAs的鉴定与特征分析

Identification and Characterization of lncRNAs Related to the Muscle Growth and Development of Japanese Flounder ().

作者信息

Wu Shuxian, Zhang Jingru, Liu Binghua, Huang Yajuan, Li Siping, Wen Haishen, Zhang Meizhao, Li Jifang, Li Yun, He Feng

机构信息

The Key Laboratory of Mariculture, Ministry of Education, Ocean University of China, Qingdao, China.

Fisheries College, Ocean University of China, Qingdao, China.

出版信息

Front Genet. 2020 Sep 9;11:1034. doi: 10.3389/fgene.2020.01034. eCollection 2020.

Abstract

Long noncoding RNAs (lncRNAs) play an important role in many life activities, but the expression pattern and function of lncRNAs in Japanese flounder skeletal muscle are unclear. In this study, 751 lncRNAs were selected from skeletal muscle in different development stages of the Japanese flounder [stage A: larval 7 days post hatching (dph); stage B: juvenile about 90 dph; stage C (female) and stage D (male): adult about 24 months] using coding potential analysis methods. In total, 232, 211, 194, 28, 29, and 14 differentially expressed lncRNAs and 9549, 8673, 9181, 1821, 1080, and 557 differentially expressed mRNAs were identified in comparisons of A versus B, A versus C, A versus D, B versus C, B versus D, and C versus D, respectively. We identified the - and -regulatory target genes of differentially expressed lncRNAs, and lncRNA-gene interaction networks were constructed using the Cytoscape program. In total, there were 200, 200, 200, 93, 47, and 11 -regulation relationships, and 29, 19, 24, 38, 8, and 47 -regulation relationships in the comparisons between A versus B, A versus C, A versus D, B versus C, B versus D, and C versus D, respectively. These results indicate that lncRNA may participate in the development of Japanese flounder skeletal muscle through - or -acting mechanisms, thus providing a scientific basis for further study of the biological function of lncRNA in Japanese flounder skeletal muscle. Based on these relationships, functional annotation of the related lncRNAs was performed by gene ontology and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analysis. Differentially expressed genes associated with muscle development were enriched in multiple pairs of comparisons (e.g., differentially expressed genes LOC109640370, LOC109634180, LOC109643555, rusc1, and LOC109626999 were enriched in the actin-binding term, and differentially expressed genes LOC109640370, was, LOC109644970, LOC109643555, and itga9 were enriched in the regulation of the actin cytoskeleton pathway in the KEGG pathway analysis in the comparison of stages C and D). We predicted lncRNA-mRNA, miRNA-mRNA, and lncRNA-miRNA regulatory relationships and constructed interactive networks using Cytoscape software. Co-expression networks show that most lncRNAs interact with one or two predicted miRNAs involved in muscle growth and development. These results provide a basis for further study of the function of lncRNAs on skeletal muscle in different developmental stages of Japanese flounder.

摘要

长链非编码RNA(lncRNAs)在许多生命活动中发挥着重要作用,但lncRNAs在牙鲆骨骼肌中的表达模式和功能尚不清楚。在本研究中,利用编码潜能分析方法,从牙鲆不同发育阶段的骨骼肌中筛选出751个lncRNAs[阶段A:孵化后7天(dph)的幼体;阶段B:约90 dph的幼鱼;阶段C(雌性)和阶段D(雄性):约24个月的成鱼]。在A与B、A与C、A与D、B与C、B与D以及C与D的比较中,分别鉴定出232、211、194、28、29和14个差异表达的lncRNAs,以及9549、8673、9181、1821、1080和557个差异表达的mRNA。我们鉴定了差异表达lncRNAs的顺式和反式调控靶基因,并使用Cytoscape程序构建了lncRNA-基因相互作用网络。在A与B、A与C、A与D、B与C、B与D以及C与D的比较中,分别共有200、200、200、93、47和11个顺式调控关系,以及29、19、24、38、8和47个反式调控关系。这些结果表明,lncRNA可能通过顺式或反式作用机制参与牙鲆骨骼肌的发育,从而为进一步研究lncRNA在牙鲆骨骼肌中的生物学功能提供了科学依据。基于这些关系,通过基因本体论和京都基因与基因组百科全书(KEGG)富集分析对相关lncRNAs进行了功能注释。与肌肉发育相关的差异表达基因在多对比较中得到富集(例如,差异表达基因LOC109640370、LOC109634180、LOC109643555、rusc1和LOC109626999在肌动蛋白结合术语中得到富集,差异表达基因LOC109640370、was、LOC109644970、LOC109643555和itga9在阶段C和D比较的KEGG通路分析中的肌动蛋白细胞骨架途径调控中得到富集)。我们预测了lncRNA-mRNA、miRNA-mRNA和lncRNA-miRNA调控关系,并使用Cytoscape软件构建了相互作用网络。共表达网络显示,大多数lncRNAs与一两个参与肌肉生长和发育的预测miRNA相互作用。这些结果为进一步研究lncRNAs在牙鲆不同发育阶段骨骼肌上的功能提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44e1/7510837/6d8a78b3433b/fgene-11-01034-g001.jpg

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