College of Biotechnology of Guilin Medical University, Guilin 541199, China.
Institute of Medical Service and Technology, Academy of Military Science, Tianjin 300161, China.
Gene. 2021 Jan 5;764:145106. doi: 10.1016/j.gene.2020.145106. Epub 2020 Sep 2.
Circular RNAs (circRNAs) are a new class of non-coding RNA with a stable structure formed by special loop splicing. Research increasingly suggests that circRNAs play a vital role in the pathogenesis and progression of various diseases. However, the roles of circRNAs in osteoblast differentiation under microgravity remain largely unknown. Here, we investigated the roles and mechanobiological response of circRNAs in osteoblasts under simulated microgravity.
Differential circRNA and mRNA expression profiles of MC3T3-E1 cells during exposure to microgravity were screened by RNA transcriptome sequencing technology (RNA-seq). The selected RNAs were validated using quantitative real-time polymerase chain reaction (qRT-PCR). Gene ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) were applied for gene function analyses.
A total of 427 circRNAs and 1912 mRNAs were differentially expressed along with osteogenic differentiation in the simulated microgravity group (SMG) compared to the control group (CON). Of these, 232 circRNAs and 991 mRNAs were upregulated, whereas 95 circRNAs and 921 mRNAs were downregulated (fold change ≥ 2, p < 0.05). The results showed that the parental genes of circRNAs and mRNAs were mainly enriched in anatomical structure morphogenesis, anchoring junction and protein binding. KEGG analysis results showed that the differentially expressed mRNAs were enriched in the regulation of the actin cytoskeleton, focal adhesion, and Ras signalling pathway. Subsequently, 9 core regulatory genes, including 6 mRNAs and 3 circRNAs, were identified based on their possible function in osteoblast differentiation. Based on this analysis, circ_014154 was selected as the target circRNA, which likely plays important roles in osteogenic differentiation processes under microgravity. The circRNA-miRNA-mRNA network showed that circRNAs might act as miRNA sponges to regulate osteoblast differentiation.
By presenting a better understanding of the molecular mechanisms of genes and circRNAs in simulated microgravity, the present study will provide a novel view of circRNAs in the regulation of osteogenic differentiation and bone formation.
环状 RNA(circRNA)是一类新的非编码 RNA,由特殊的环式剪接形成稳定的结构。研究越来越表明,circRNA 在各种疾病的发病机制和进展中起着至关重要的作用。然而,circRNA 在微重力下成骨细胞分化中的作用在很大程度上仍不清楚。在这里,我们研究了模拟微重力下成骨细胞中 circRNA 的作用和机械生物学反应。
通过 RNA 转录组测序技术(RNA-seq)筛选 MC3T3-E1 细胞在暴露于微重力下时的差异 circRNA 和 mRNA 表达谱。使用定量实时聚合酶链反应(qRT-PCR)验证所选 RNA。基因本体论(GO)和京都基因与基因组百科全书(KEGG)被用于基因功能分析。
与对照组(CON)相比,模拟微重力组(SMG)中成骨分化过程中共有 427 个 circRNA 和 1912 个 mRNA 差异表达。其中,232 个 circRNA 和 991 个 mRNA 上调,95 个 circRNA 和 921 个 mRNA 下调(倍数变化≥2,p<0.05)。结果表明,circRNA 和 mRNA 的母基因主要富集在解剖结构形态发生、锚定连接和蛋白质结合中。KEGG 分析结果表明,差异表达的 mRNA 富集在肌动蛋白细胞骨架的调节、焦点黏附和 Ras 信号通路中。随后,基于它们在成骨分化中的可能功能,确定了 9 个核心调节基因,包括 6 个 mRNA 和 3 个 circRNA。基于此分析,选择 circ_014154 作为靶 circRNA,其可能在微重力下成骨分化过程中发挥重要作用。circRNA-miRNA-mRNA 网络表明,circRNA 可能作为 miRNA 海绵来调节成骨细胞分化。
通过更好地了解基因和 circRNA 在模拟微重力下的分子机制,本研究将为 circRNA 在调节成骨分化和骨形成中的作用提供新的视角。