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Updated: Jan 19, 2026

Transient Treatment of Human Pluripotent Stem Cells with DMSO to Promote Differentiation
Published on: July 17, 2019
Suppression of PRPF4 regulates pluripotency, proliferation, and differentiation in mouse embryonic stem cells
Song Park1, Se-Hyeon Han2,3, Hyeon-Gyeom Kim1,4
1Core Protein Resources Center, DGIST, Daegu, Republic of Korea.
Abstract:
Mouse embryonic stem cells (mESCs) are characterized by their self-renewal and pluripotency and are capable of differentiating into all three germ layers. For this reason, mESCs are considered a very important model for stem cell research and clinical applications in regenerative medicine. The pre-mRNA processing factor 4 (PRPF4) gene is known to have a major effect on pre-mRNA splicing and is also known to affect tissue differentiation during development. In this study, we investigated the effects of PRPF4 knockdown on mESCs. First, we allowed mESCs to differentiate naturally and observed a significant decrease in PRPF4 expression during the differentiation process. We then artificially induced the knockdown of PRPF4 in mESCs and observed the changes in the phenotype. When PRPF4 was knocked down, various genes involved in mESC pluripotency showed significantly decreased expression. In addition, mESC proliferation increased abnormally, accompanied by a significant increase in mESC colony size. The formation of mESC embryoid bodies and teratomas was delayed following PRPF4 knockdown. Based on these results, the reduced expression of PRPF4 affects mESC phenotypes and is a key factor in mESC. SIGNIFICANCE OF THE STUDY: Our results indicate that PRPF4 affects the properties of mESCs. Suppression of PRPF4 resulted in a decrease in pluripotency of mESC and promoted proliferation. In addition, suppression of PRPF4 also resulted in decreased apoptosis. Moreover, the inhibition of PRPF4 reduced the ability to differentiate and formation of teratoma in mESC. Our results demonstrated that PRPF4 is a key factor of controlling mESC abilities.
Insights
Knocking down the PRPF4 gene in mouse embryonic stem cells (mESCs) reduces pluripotency and differentiation ability while promoting proliferation. PRPF4 is crucial for maintaining mESC properties.
Area of Science:
- Stem Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Mouse embryonic stem cells (mESCs) are vital models for regenerative medicine due to their self-renewal and pluripotency.
- The pre-mRNA processing factor 4 (PRPF4) gene influences pre-mRNA splicing and tissue differentiation.
Purpose of the Study:
- To investigate the impact of PRPF4 knockdown on mESC phenotype and function.
- To determine PRPF4's role in maintaining mESC pluripotency and differentiation capacity.
Main Methods:
- Natural differentiation of mESCs with observation of PRPF4 expression.
- Artificial induction of PRPF4 knockdown in mESCs.
- Phenotypic analysis of mESCs following PRPF4 suppression, including gene expression, proliferation, embryoid body, and teratoma formation.
Main Results:
- PRPF4 expression significantly decreased during natural mESC differentiation.
- PRPF4 knockdown led to reduced expression of pluripotency genes, increased proliferation, and larger colony size.
- Suppression of PRPF4 delayed embryoid body and teratoma formation, and decreased apoptosis.
Conclusions:
- PRPF4 is a key factor controlling mESC properties, including pluripotency, proliferation, and differentiation.
- Reduced PRPF4 expression impairs mESC differentiation and teratoma formation while promoting proliferation and reducing apoptosis.
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