College of Animal Science and Technology, Yangzhou University, Yangzhou 225009, China.
Joint International Research Laboratory of Agriculture and Agri-Product Safety of Ministry of Education of China, College of Animal Science and Technology, Yangzhou University, Yangzhou 225009, China.
Genes (Basel). 2021 Nov 11;12(11):1787. doi: 10.3390/genes12111787.
Growing evidence has demonstrated the emerging role of long non-coding RNA as competitive endogenous RNA (ceRNA) in regulating skeletal muscle development. However, the mechanism of ceRNA regulated by lncRNA in pigeon skeletal muscle development remains unclear. To reveal the function and regulatory mechanisms of lncRNA, we first analyzed the expression profiles of lncRNA, microRNA (miRNA), and mRNA during the development of pigeon skeletal muscle using high-throughput sequencing. We then constructed a lncRNA-miRNA-mRNA ceRNA network based on differentially expressed (DE) lncRNAs, miRNAs, and mRNAs according to the ceRNA hypothesis. Functional enrichment and short time-series expression miner (STEM) analysis were performed to explore the function of the ceRNA network. Hub lncRNA-miRNA-mRNA interactions were identified by connectivity degree and validated using dual-luciferase activity assay. The results showed that a total of 1625 DE lncRNAs, 11,311 DE mRNAs, and 573 DE miRNAs were identified. A ceRNA network containing 9120 lncRNA-miRNA-mRNA interactions was constructed. STEM analysis indicated that the function of the lncRNA-associated ceRNA network might be developmental specific. Functional enrichment analysis identified potential pathways regulating pigeon skeletal muscle development, such as cell cycle and MAPK signaling. Based on the connectivity degree, lncRNAs , , , , and were identified as hub genes in the ceRNA network. lncRNA might regulate the FSHD region gene 1 ()/ SRC proto-oncogene, non-receptor tyrosine kinase () by sponge adsorption of cli-miR-1a-3p to affect the development of pigeon skeletal muscle. Our findings provide a data basis for in-depth elucidation of the lncRNA-associated ceRNA mechanism underlying pigeon skeletal muscle development.
越来越多的证据表明,长非编码 RNA 作为竞争性内源 RNA (ceRNA) 在调节骨骼肌发育中起着新兴作用。然而,lncRNA 调节信鸽骨骼肌发育中 ceRNA 的机制尚不清楚。为了揭示 lncRNA 的功能和调控机制,我们首先利用高通量测序分析了信鸽骨骼肌发育过程中 lncRNA、microRNA (miRNA) 和 mRNA 的表达谱。然后,根据 ceRNA 假说,我们构建了一个基于差异表达 (DE) lncRNA、miRNA 和 mRNA 的 lncRNA-miRNA-mRNA ceRNA 网络。通过功能富集和短时间序列表达 miner (STEM) 分析来探索 ceRNA 网络的功能。通过连通度和双荧光素酶活性测定验证来识别 hub lncRNA-miRNA-mRNA 相互作用。结果表明,共鉴定出 1625 个 DE lncRNA、11311 个 DE mRNA 和 573 个 DE miRNA。构建了一个包含 9120 个 lncRNA-miRNA-mRNA 相互作用的 ceRNA 网络。STEM 分析表明,lncRNA 相关 ceRNA 网络的功能可能具有发育特异性。功能富集分析鉴定出了一些潜在的通路,这些通路可能调节信鸽骨骼肌的发育,如细胞周期和 MAPK 信号通路。根据连通度,鉴定出 lncRNA 、 、 、 、 为 ceRNA 网络中的枢纽基因。lncRNA 可能通过海绵吸附 cli-miR-1a-3p 来调节 FSHD 区基因 1 ()/ SRC 原癌基因,非受体酪氨酸激酶 (),从而影响信鸽骨骼肌的发育。我们的研究结果为深入阐明信鸽骨骼肌发育中 lncRNA 相关 ceRNA 机制提供了数据基础。