Department of Biochemistry and Molecular Biology, Faculty of Biology, National and Kapodistrian University of Athens, Panepistimiopolis, 15701, Athens, Greece.
Institute for Bioinnovation, Biomedical Sciences Research Center, "Alexander Fleming", Vari, Greece.
Funct Integr Genomics. 2023 Nov 21;23(4):341. doi: 10.1007/s10142-023-01272-0.
tRNA fragments (tRFs) are small non-coding RNAs generated through specific cleavage of tRNAs and involved in various biological processes. Among the different types of tRFs, the 3'-tRFs have attracted scientific interest due to their regulatory role in gene expression. In this study, we investigated the role of 3'-tRF-Cys, a tRF deriving from cleavage in the T-loop of tRNA, in the regulation of gene expression in HEK-293 cells. Previous studies have shown that 3'-tRF-Cys is incorporated into the RISC complex and interacts with Argonaute proteins, suggesting its involvement in the regulation of gene expression. However, the general role and effect of the deregulation of 3'-tRF-Cys levels in human cells have not been investigated so far. To fill this gap, we stably overexpressed 3'-tRF-Cys in HEK-293 cells and performed transcriptomic and proteomic analyses. Moreover, we validated the interaction of this tRF with putative targets, the levels of which were found to be affected by 3'-tRF-Cys overexpression. Lastly, we investigated the implication of 3'-tRF-Cys in various pathways using extensive bioinformatics analysis. Our results indicate that 3'-tRF-Cys overexpression led to changes in the global gene expression profile of HEK-293 cells and that multiple cellular pathways were affected by the deregulation of the levels of this tRF. Additionally, we demonstrated that 3'-tRF-Cys directly interacts with thymopoietin (TMPO) transcript variant 1 (also known as LAP2α), leading to modulation of its levels. In conclusion, our findings suggest that 3'-tRF-Cys plays a significant role in gene expression regulation and highlight the importance of this tRF in cellular processes.
tRNA 片段(tRFs)是通过 tRNA 的特异性切割产生的小非编码 RNA,参与各种生物过程。在不同类型的 tRFs 中,3'-tRFs 由于其在基因表达调控中的作用而引起了科学界的兴趣。在这项研究中,我们研究了来自 tRNA T 环切割的 tRF-Cys 在 HEK-293 细胞中基因表达调控中的作用。先前的研究表明,3'-tRF-Cys 被整合到 RISC 复合物中并与 Argonaute 蛋白相互作用,表明其参与基因表达的调控。然而,目前尚未研究 3'-tRF-Cys 水平失调在人类细胞中的一般作用和影响。为了填补这一空白,我们在 HEK-293 细胞中稳定过表达 3'-tRF-Cys 并进行了转录组和蛋白质组分析。此外,我们验证了这种 tRF 与假定靶标的相互作用,发现其水平受 3'-tRF-Cys 过表达的影响。最后,我们使用广泛的生物信息学分析研究了 3'-tRF-Cys 在各种途径中的意义。我们的结果表明,3'-tRF-Cys 过表达导致 HEK-293 细胞的整体基因表达谱发生变化,并且多个细胞途径受到这种 tRF 水平失调的影响。此外,我们证明 3'-tRF-Cys 直接与胸腺生成素(TMPO)转录变体 1(也称为 LAP2α)相互作用,导致其水平的调节。总之,我们的研究结果表明,3'-tRF-Cys 在基因表达调控中发挥着重要作用,并强调了这种 tRF 在细胞过程中的重要性。