| Literature DB >> 33994855 |
Kun Li1, Ziqiang Wang1,2.
Abstract
Serine/arginine-rich splicing factor 2 (SRSF2) is a splicing factor that is widely expressed in a variety of mammalian cell types. Increasing evidence has confirmed that SRSF2 plays vital roles in a number of biological and pathological processes. Therefore, it is important to understand how its expression is regulated, and how it regulates the expression of its target genes. Recently, we found that SRSF2 expression could be upregulated by herpes simplex virus-1 (HSV-1) infection, and that altered SRSF2 expression, in turn, epigenetically regulates the transcription of HSV-1 genes. Further studies on T cell exhaustion demonstrated that upregulated SRSF2 in exhausted T cells elevated the levels of multiple immune checkpoint molecules by associating with the acyl-transferases, P300 and CBP, and by altering histone modification near the transcription start sites of these genes, thereby influencing signal transducer and activator of transcription 3 binding to these gene promoters. These findings suggest that SRSF2 acts as an important sensor and effector during disease progression. Here, we discuss the molecules that regulate SRSF2 gene expression and their associated mechanisms, and the mechanisms via which SRSF2 regulates the expression of target genes, thus providing novel insights into the central role of SRSF2 in gene regulation. © The author(s).Entities:
Keywords: SC35; SRSF2; gene regulation; mRNA stability.; splicing; transcription
Mesh:
Substances:
Year: 2021 PMID: 33994855 PMCID: PMC8120470 DOI: 10.7150/ijbs.58888
Source DB: PubMed Journal: Int J Biol Sci ISSN: 1449-2288 Impact factor: 6.580
Factors regulating SRSF2 expression and protein modification.
| Cell Type | Factor | Regulatory Pattern | Function | Reference |
|---|---|---|---|---|
| H358 and H1299 cells | E2F1 | Transcription | Up (alternative splicing) | |
| HeLa Tet-On cells | SRSF2 | Alternative splicing | / | |
| HeLa cells | SRSF2 | / | ||
| SMMC-7721 and QGY-7703 cells | miR-193a-3p | mRNA stability and translation | Down (alternative splicing) | |
| 5637 cells and H-bc cells | miR-193a-3p | Down (alternative splicing) | ||
| CNE-1 and CNE-2 cells | miR-193a-3p | Down (alternative splicing) | ||
| HeLa cells | miR-183-5p and miR-33a-5p | / | ||
| HeLa and MG63 cells | SRPK1 | Phosphorylation and acetylation | Down (alternative splicing) | |
| DT40 cells | PI3K/Akt | Up (alternative splicing) | ||
| HEK293T cells | PI3K/Akt | Up (alternative splicing) | ||
| MEFs | PHLPP1 and 2 | / | ||
| HeLa cells | GSK-3β | Down (alternative splicing) | ||
| Cortical neurons | GSK-3β | Down (alternative splicing) | ||
| HEK-293T cells | Dyrk1A | Down (alternative splicing) | ||
| HEK-293FT and HeLa cells | PKA | Up (alternative splicing) | ||
| Embryonic neurons | HIV-1 Tat | Down (alternative splicing) | ||
| HeLa and HEK-293FT cells | SIRT1 | Down (alternative splicing) | ||
| H1299 and H358 cells | TIP60 | Up (alternative splicing) |
SRSF2 regulate genes expression.
| Cell type | Target | Regulatory pattern | References |
|---|---|---|---|
| HeLa cells | HSV-1 ICP0, ICP27, and TK | Transcription | |
| JurkateE6.1 cells | PD-L1, BTLA, CTLA4, LAG3, and CD160 | ||
| H1299 and HeLa cells | Skp2 and Cyclin E | ||
| HeLa cells | HSV-1 ICP0 | Alternative splicing | |
| HEK-293T and HeLa cells | Adenovirus E1a | ||
| HEK-293T and HeLa cells | SV40 early pre-mRNA | ||
| HEK-293T and HeLa cells | HIV-1 Tat | ||
| MCF-7 cells | MDM2 | ||
| KG-1, HL-60 and promyelocytic cells | CSF3R | ||
| MGH7 cells | VEGFR1 | ||
| H358 cells | VEGF-A | ||
| MDA MB 231 and HeLa cells | Ron | ||
| MCF-7 cells | CD44 | ||
| H358 cells | c-Flip, Caspase -8, -9, and Bcl-x | ||
| SMMC-7721 and QGY-7703 cells | Caspase 2 | ||
| NT2/D1 cells | PKCδ | ||
| HeLa cells | KLF6 | ||
| HEK293 cells | APP | ||
| HEK-293T cells | TAU | ||
| HEK-293T and HeLa cells | SMN2 | ||
| HEK-293T cells | TAU | RNA stability and transport | |
| W12ti tumor cells | HPV16 E6E7 | ||
| HEK-293T and HeLa cells | SV40 early pre-mRNA |
Figure 1Schematic model of the central roles of SRSF2 in genes expression. Numbers of regulators are found to modulate SRSF2 gene transcription ①, pre-mRNA splicing ②, mRNA stability ③, mRNA translation ④, and SRSF2 modification (phosphorylation and acetylation) ⑤. In turn, SRSF2 regulates target gene transcription ⑥, pre-mRNA splicing ⑦, and mRNA transport and stability ⑧.